1993
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1 // Matrix manipulations. |
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2 /* |
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3 |
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4 Copyright (C) 1996, 1997 John W. Eaton |
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5 |
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6 This file is part of Octave. |
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7 |
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8 Octave is free software; you can redistribute it and/or modify it |
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9 under the terms of the GNU General Public License as published by the |
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10 Free Software Foundation; either version 2, or (at your option) any |
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11 later version. |
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12 |
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13 Octave is distributed in the hope that it will be useful, but WITHOUT |
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14 ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or |
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15 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License |
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16 for more details. |
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17 |
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18 You should have received a copy of the GNU General Public License |
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19 along with Octave; see the file COPYING. If not, write to the Free |
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20 Software Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA |
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21 02110-1301, USA. |
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22 |
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23 */ |
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24 |
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25 #ifdef HAVE_CONFIG_H |
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26 #include <config.h> |
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27 #endif |
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28 |
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29 #include <cfloat> |
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30 |
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31 #include <iostream> |
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32 |
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33 #include "Array-util.h" |
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34 #include "byte-swap.h" |
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35 #include "dMatrix.h" |
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36 #include "dbleAEPBAL.h" |
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37 #include "dbleDET.h" |
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38 #include "dbleSCHUR.h" |
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39 #include "dbleSVD.h" |
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40 #include "f77-fcn.h" |
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41 #include "lo-error.h" |
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42 #include "lo-ieee.h" |
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43 #include "lo-mappers.h" |
1968
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44 #include "lo-utils.h" |
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45 #include "mx-base.h" |
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46 #include "mx-m-dm.h" |
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47 #include "mx-dm-m.h" |
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48 #include "mx-inlines.cc" |
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49 #include "oct-cmplx.h" |
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50 #include "quit.h" |
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51 |
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52 #if defined (HAVE_FFTW3) |
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53 #include "oct-fftw.h" |
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54 #endif |
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55 |
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56 // Fortran functions we call. |
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57 |
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58 extern "C" |
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59 { |
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60 F77_RET_T |
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61 F77_FUNC (dgebal, DGEBAL) (F77_CONST_CHAR_ARG_DECL, |
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62 const octave_idx_type&, double*, const octave_idx_type&, octave_idx_type&, |
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63 octave_idx_type&, double*, octave_idx_type& |
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64 F77_CHAR_ARG_LEN_DECL); |
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65 |
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66 F77_RET_T |
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67 F77_FUNC (dgebak, DGEBAK) (F77_CONST_CHAR_ARG_DECL, |
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68 F77_CONST_CHAR_ARG_DECL, |
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69 const octave_idx_type&, const octave_idx_type&, const octave_idx_type&, double*, |
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70 const octave_idx_type&, double*, const octave_idx_type&, octave_idx_type& |
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71 F77_CHAR_ARG_LEN_DECL |
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72 F77_CHAR_ARG_LEN_DECL); |
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73 |
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74 |
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75 F77_RET_T |
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76 F77_FUNC (dgemm, DGEMM) (F77_CONST_CHAR_ARG_DECL, |
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77 F77_CONST_CHAR_ARG_DECL, |
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78 const octave_idx_type&, const octave_idx_type&, const octave_idx_type&, |
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79 const double&, const double*, const octave_idx_type&, |
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80 const double*, const octave_idx_type&, const double&, |
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81 double*, const octave_idx_type& |
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82 F77_CHAR_ARG_LEN_DECL |
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83 F77_CHAR_ARG_LEN_DECL); |
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84 |
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85 F77_RET_T |
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86 F77_FUNC (dgetrf, DGETRF) (const octave_idx_type&, const octave_idx_type&, double*, const octave_idx_type&, |
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87 octave_idx_type*, octave_idx_type&); |
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88 |
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89 F77_RET_T |
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90 F77_FUNC (dgetrs, DGETRS) (F77_CONST_CHAR_ARG_DECL, const octave_idx_type&, const octave_idx_type&, |
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91 const double*, const octave_idx_type&, |
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92 const octave_idx_type*, double*, const octave_idx_type&, octave_idx_type& |
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93 F77_CHAR_ARG_LEN_DECL); |
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94 |
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95 F77_RET_T |
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96 F77_FUNC (dgetri, DGETRI) (const octave_idx_type&, double*, const octave_idx_type&, const octave_idx_type*, |
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97 double*, const octave_idx_type&, octave_idx_type&); |
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98 |
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99 F77_RET_T |
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100 F77_FUNC (dgecon, DGECON) (F77_CONST_CHAR_ARG_DECL, const octave_idx_type&, double*, |
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101 const octave_idx_type&, const double&, double&, |
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102 double*, octave_idx_type*, octave_idx_type& |
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103 F77_CHAR_ARG_LEN_DECL); |
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104 |
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105 F77_RET_T |
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106 F77_FUNC (dgelss, DGELSS) (const octave_idx_type&, const octave_idx_type&, const octave_idx_type&, |
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107 double*, const octave_idx_type&, double*, |
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108 const octave_idx_type&, double*, double&, octave_idx_type&, |
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109 double*, const octave_idx_type&, octave_idx_type&); |
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110 |
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111 // Note that the original complex fft routines were not written for |
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112 // double complex arguments. They have been modified by adding an |
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113 // implicit double precision (a-h,o-z) statement at the beginning of |
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114 // each subroutine. |
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115 |
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116 F77_RET_T |
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117 F77_FUNC (cffti, CFFTI) (const octave_idx_type&, Complex*); |
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118 |
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119 F77_RET_T |
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120 F77_FUNC (cfftf, CFFTF) (const octave_idx_type&, Complex*, Complex*); |
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121 |
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122 F77_RET_T |
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123 F77_FUNC (cfftb, CFFTB) (const octave_idx_type&, Complex*, Complex*); |
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124 |
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125 F77_RET_T |
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126 F77_FUNC (dlartg, DLARTG) (const double&, const double&, double&, |
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127 double&, double&); |
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128 |
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129 F77_RET_T |
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130 F77_FUNC (dtrsyl, DTRSYL) (F77_CONST_CHAR_ARG_DECL, |
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131 F77_CONST_CHAR_ARG_DECL, |
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132 const octave_idx_type&, const octave_idx_type&, const octave_idx_type&, |
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133 const double*, const octave_idx_type&, const double*, |
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134 const octave_idx_type&, const double*, const octave_idx_type&, |
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135 double&, octave_idx_type& |
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136 F77_CHAR_ARG_LEN_DECL |
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137 F77_CHAR_ARG_LEN_DECL); |
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138 |
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139 F77_RET_T |
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140 F77_FUNC (xdlange, XDLANGE) (F77_CONST_CHAR_ARG_DECL, const octave_idx_type&, |
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141 const octave_idx_type&, const double*, |
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142 const octave_idx_type&, double*, double& |
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143 F77_CHAR_ARG_LEN_DECL); |
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144 } |
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145 |
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146 // Matrix class. |
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147 |
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148 Matrix::Matrix (const RowVector& rv) |
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149 : MArray2<double> (1, rv.length (), 0.0) |
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150 { |
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151 for (octave_idx_type i = 0; i < rv.length (); i++) |
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152 elem (0, i) = rv.elem (i); |
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153 } |
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154 |
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155 Matrix::Matrix (const ColumnVector& cv) |
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156 : MArray2<double> (cv.length (), 1, 0.0) |
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157 { |
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158 for (octave_idx_type i = 0; i < cv.length (); i++) |
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159 elem (i, 0) = cv.elem (i); |
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160 } |
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161 |
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162 Matrix::Matrix (const DiagMatrix& a) |
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163 : MArray2<double> (a.rows (), a.cols (), 0.0) |
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164 { |
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165 for (octave_idx_type i = 0; i < a.length (); i++) |
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166 elem (i, i) = a.elem (i, i); |
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167 } |
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168 |
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169 // XXX FIXME XXX -- could we use a templated mixed-type copy function |
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170 // here? |
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171 |
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172 Matrix::Matrix (const boolMatrix& a) |
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173 : MArray2<double> (a.rows (), a.cols ()) |
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174 { |
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175 for (octave_idx_type i = 0; i < a.rows (); i++) |
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176 for (octave_idx_type j = 0; j < a.cols (); j++) |
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177 elem (i, j) = a.elem (i, j); |
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178 } |
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179 |
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180 Matrix::Matrix (const charMatrix& a) |
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181 : MArray2<double> (a.rows (), a.cols ()) |
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182 { |
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183 for (octave_idx_type i = 0; i < a.rows (); i++) |
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184 for (octave_idx_type j = 0; j < a.cols (); j++) |
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185 elem (i, j) = a.elem (i, j); |
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186 } |
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187 |
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188 bool |
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189 Matrix::operator == (const Matrix& a) const |
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190 { |
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191 if (rows () != a.rows () || cols () != a.cols ()) |
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192 return false; |
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193 |
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194 return mx_inline_equal (data (), a.data (), length ()); |
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195 } |
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196 |
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197 bool |
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198 Matrix::operator != (const Matrix& a) const |
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199 { |
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200 return !(*this == a); |
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201 } |
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202 |
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203 bool |
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204 Matrix::is_symmetric (void) const |
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205 { |
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206 if (is_square () && rows () > 0) |
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207 { |
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208 for (octave_idx_type i = 0; i < rows (); i++) |
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209 for (octave_idx_type j = i+1; j < cols (); j++) |
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210 if (elem (i, j) != elem (j, i)) |
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211 return false; |
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212 |
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213 return true; |
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214 } |
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215 |
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216 return false; |
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217 } |
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218 |
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219 Matrix& |
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220 Matrix::insert (const Matrix& a, octave_idx_type r, octave_idx_type c) |
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221 { |
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222 Array2<double>::insert (a, r, c); |
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223 return *this; |
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224 } |
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225 |
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226 Matrix& |
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227 Matrix::insert (const RowVector& a, octave_idx_type r, octave_idx_type c) |
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228 { |
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229 octave_idx_type a_len = a.length (); |
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230 |
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231 if (r < 0 || r >= rows () || c < 0 || c + a_len > cols ()) |
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232 { |
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233 (*current_liboctave_error_handler) ("range error for insert"); |
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234 return *this; |
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235 } |
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236 |
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237 if (a_len > 0) |
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238 { |
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239 make_unique (); |
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240 |
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241 for (octave_idx_type i = 0; i < a_len; i++) |
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242 xelem (r, c+i) = a.elem (i); |
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243 } |
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244 |
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245 return *this; |
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246 } |
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247 |
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248 Matrix& |
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249 Matrix::insert (const ColumnVector& a, octave_idx_type r, octave_idx_type c) |
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250 { |
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251 octave_idx_type a_len = a.length (); |
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252 |
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253 if (r < 0 || r + a_len > rows () || c < 0 || c >= cols ()) |
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254 { |
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255 (*current_liboctave_error_handler) ("range error for insert"); |
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256 return *this; |
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257 } |
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258 |
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259 if (a_len > 0) |
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260 { |
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261 make_unique (); |
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262 |
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263 for (octave_idx_type i = 0; i < a_len; i++) |
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264 xelem (r+i, c) = a.elem (i); |
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265 } |
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266 |
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267 return *this; |
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268 } |
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269 |
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270 Matrix& |
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271 Matrix::insert (const DiagMatrix& a, octave_idx_type r, octave_idx_type c) |
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272 { |
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273 octave_idx_type a_nr = a.rows (); |
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274 octave_idx_type a_nc = a.cols (); |
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275 |
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276 if (r < 0 || r + a_nr > rows () || c < 0 || c + a_nc > cols ()) |
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277 { |
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278 (*current_liboctave_error_handler) ("range error for insert"); |
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279 return *this; |
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280 } |
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281 |
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282 fill (0.0, r, c, r + a_nr - 1, c + a_nc - 1); |
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283 |
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284 octave_idx_type a_len = a.length (); |
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285 |
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286 if (a_len > 0) |
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287 { |
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288 make_unique (); |
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289 |
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290 for (octave_idx_type i = 0; i < a_len; i++) |
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291 xelem (r+i, c+i) = a.elem (i, i); |
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292 } |
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293 |
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294 return *this; |
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295 } |
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296 |
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297 Matrix& |
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298 Matrix::fill (double val) |
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299 { |
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300 octave_idx_type nr = rows (); |
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301 octave_idx_type nc = cols (); |
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302 |
458
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303 if (nr > 0 && nc > 0) |
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304 { |
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305 make_unique (); |
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306 |
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307 for (octave_idx_type j = 0; j < nc; j++) |
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308 for (octave_idx_type i = 0; i < nr; i++) |
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309 xelem (i, j) = val; |
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310 } |
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311 |
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312 return *this; |
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313 } |
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314 |
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315 Matrix& |
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316 Matrix::fill (double val, octave_idx_type r1, octave_idx_type c1, octave_idx_type r2, octave_idx_type c2) |
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317 { |
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318 octave_idx_type nr = rows (); |
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319 octave_idx_type nc = cols (); |
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320 |
458
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321 if (r1 < 0 || r2 < 0 || c1 < 0 || c2 < 0 |
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322 || r1 >= nr || r2 >= nr || c1 >= nc || c2 >= nc) |
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323 { |
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324 (*current_liboctave_error_handler) ("range error for fill"); |
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325 return *this; |
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326 } |
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327 |
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328 if (r1 > r2) { octave_idx_type tmp = r1; r1 = r2; r2 = tmp; } |
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329 if (c1 > c2) { octave_idx_type tmp = c1; c1 = c2; c2 = tmp; } |
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330 |
4316
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331 if (r2 >= r1 && c2 >= c1) |
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332 { |
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333 make_unique (); |
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334 |
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335 for (octave_idx_type j = c1; j <= c2; j++) |
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336 for (octave_idx_type i = r1; i <= r2; i++) |
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337 xelem (i, j) = val; |
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338 } |
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339 |
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340 return *this; |
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341 } |
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342 |
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343 Matrix |
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344 Matrix::append (const Matrix& a) const |
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345 { |
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346 octave_idx_type nr = rows (); |
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347 octave_idx_type nc = cols (); |
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348 if (nr != a.rows ()) |
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349 { |
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350 (*current_liboctave_error_handler) ("row dimension mismatch for append"); |
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351 return Matrix (); |
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352 } |
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353 |
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354 octave_idx_type nc_insert = nc; |
458
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355 Matrix retval (nr, nc + a.cols ()); |
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356 retval.insert (*this, 0, 0); |
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357 retval.insert (a, 0, nc_insert); |
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358 return retval; |
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359 } |
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360 |
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361 Matrix |
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362 Matrix::append (const RowVector& a) const |
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363 { |
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364 octave_idx_type nr = rows (); |
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365 octave_idx_type nc = cols (); |
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366 if (nr != 1) |
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367 { |
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368 (*current_liboctave_error_handler) ("row dimension mismatch for append"); |
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369 return Matrix (); |
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370 } |
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371 |
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372 octave_idx_type nc_insert = nc; |
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373 Matrix retval (nr, nc + a.length ()); |
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374 retval.insert (*this, 0, 0); |
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375 retval.insert (a, 0, nc_insert); |
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376 return retval; |
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377 } |
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378 |
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379 Matrix |
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380 Matrix::append (const ColumnVector& a) const |
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381 { |
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382 octave_idx_type nr = rows (); |
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383 octave_idx_type nc = cols (); |
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384 if (nr != a.length ()) |
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385 { |
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386 (*current_liboctave_error_handler) ("row dimension mismatch for append"); |
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387 return Matrix (); |
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388 } |
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389 |
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390 octave_idx_type nc_insert = nc; |
458
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391 Matrix retval (nr, nc + 1); |
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392 retval.insert (*this, 0, 0); |
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393 retval.insert (a, 0, nc_insert); |
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394 return retval; |
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395 } |
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396 |
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397 Matrix |
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398 Matrix::append (const DiagMatrix& a) const |
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399 { |
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400 octave_idx_type nr = rows (); |
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401 octave_idx_type nc = cols (); |
458
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402 if (nr != a.rows ()) |
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403 { |
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404 (*current_liboctave_error_handler) ("row dimension mismatch for append"); |
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405 return *this; |
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406 } |
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407 |
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408 octave_idx_type nc_insert = nc; |
458
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409 Matrix retval (nr, nc + a.cols ()); |
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410 retval.insert (*this, 0, 0); |
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411 retval.insert (a, 0, nc_insert); |
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412 return retval; |
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413 } |
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414 |
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415 Matrix |
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416 Matrix::stack (const Matrix& a) const |
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417 { |
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418 octave_idx_type nr = rows (); |
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419 octave_idx_type nc = cols (); |
458
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420 if (nc != a.cols ()) |
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421 { |
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422 (*current_liboctave_error_handler) |
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423 ("column dimension mismatch for stack"); |
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424 return Matrix (); |
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425 } |
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426 |
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427 octave_idx_type nr_insert = nr; |
458
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428 Matrix retval (nr + a.rows (), nc); |
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429 retval.insert (*this, 0, 0); |
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430 retval.insert (a, nr_insert, 0); |
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431 return retval; |
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432 } |
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433 |
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434 Matrix |
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435 Matrix::stack (const RowVector& a) const |
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436 { |
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437 octave_idx_type nr = rows (); |
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438 octave_idx_type nc = cols (); |
458
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439 if (nc != a.length ()) |
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440 { |
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441 (*current_liboctave_error_handler) |
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442 ("column dimension mismatch for stack"); |
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443 return Matrix (); |
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444 } |
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445 |
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446 octave_idx_type nr_insert = nr; |
458
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447 Matrix retval (nr + 1, nc); |
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448 retval.insert (*this, 0, 0); |
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449 retval.insert (a, nr_insert, 0); |
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450 return retval; |
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451 } |
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452 |
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453 Matrix |
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454 Matrix::stack (const ColumnVector& a) const |
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455 { |
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456 octave_idx_type nr = rows (); |
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457 octave_idx_type nc = cols (); |
458
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458 if (nc != 1) |
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459 { |
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460 (*current_liboctave_error_handler) |
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461 ("column dimension mismatch for stack"); |
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462 return Matrix (); |
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463 } |
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464 |
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465 octave_idx_type nr_insert = nr; |
458
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466 Matrix retval (nr + a.length (), nc); |
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467 retval.insert (*this, 0, 0); |
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468 retval.insert (a, nr_insert, 0); |
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469 return retval; |
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470 } |
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471 |
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472 Matrix |
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473 Matrix::stack (const DiagMatrix& a) const |
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474 { |
5275
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475 octave_idx_type nr = rows (); |
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476 octave_idx_type nc = cols (); |
458
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477 if (nc != a.cols ()) |
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478 { |
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479 (*current_liboctave_error_handler) |
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480 ("column dimension mismatch for stack"); |
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481 return Matrix (); |
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482 } |
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483 |
5275
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484 octave_idx_type nr_insert = nr; |
458
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485 Matrix retval (nr + a.rows (), nc); |
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486 retval.insert (*this, 0, 0); |
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487 retval.insert (a, nr_insert, 0); |
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488 return retval; |
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489 } |
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490 |
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491 Matrix |
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492 real (const ComplexMatrix& a) |
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493 { |
5275
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494 octave_idx_type a_len = a.length (); |
1205
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495 Matrix retval; |
|
496 if (a_len > 0) |
3769
|
497 retval = Matrix (mx_inline_real_dup (a.data (), a_len), |
|
498 a.rows (), a.cols ()); |
1205
|
499 return retval; |
|
500 } |
|
501 |
|
502 Matrix |
|
503 imag (const ComplexMatrix& a) |
|
504 { |
5275
|
505 octave_idx_type a_len = a.length (); |
1205
|
506 Matrix retval; |
|
507 if (a_len > 0) |
3769
|
508 retval = Matrix (mx_inline_imag_dup (a.data (), a_len), |
|
509 a.rows (), a.cols ()); |
1205
|
510 return retval; |
|
511 } |
|
512 |
|
513 Matrix |
5275
|
514 Matrix::extract (octave_idx_type r1, octave_idx_type c1, octave_idx_type r2, octave_idx_type c2) const |
458
|
515 { |
5275
|
516 if (r1 > r2) { octave_idx_type tmp = r1; r1 = r2; r2 = tmp; } |
|
517 if (c1 > c2) { octave_idx_type tmp = c1; c1 = c2; c2 = tmp; } |
|
518 |
|
519 octave_idx_type new_r = r2 - r1 + 1; |
|
520 octave_idx_type new_c = c2 - c1 + 1; |
458
|
521 |
|
522 Matrix result (new_r, new_c); |
|
523 |
5275
|
524 for (octave_idx_type j = 0; j < new_c; j++) |
|
525 for (octave_idx_type i = 0; i < new_r; i++) |
4316
|
526 result.xelem (i, j) = elem (r1+i, c1+j); |
|
527 |
|
528 return result; |
|
529 } |
|
530 |
|
531 Matrix |
5275
|
532 Matrix::extract_n (octave_idx_type r1, octave_idx_type c1, octave_idx_type nr, octave_idx_type nc) const |
4316
|
533 { |
|
534 Matrix result (nr, nc); |
|
535 |
5275
|
536 for (octave_idx_type j = 0; j < nc; j++) |
|
537 for (octave_idx_type i = 0; i < nr; i++) |
4316
|
538 result.xelem (i, j) = elem (r1+i, c1+j); |
458
|
539 |
|
540 return result; |
|
541 } |
|
542 |
|
543 // extract row or column i. |
|
544 |
|
545 RowVector |
5275
|
546 Matrix::row (octave_idx_type i) const |
458
|
547 { |
5275
|
548 octave_idx_type nc = cols (); |
458
|
549 if (i < 0 || i >= rows ()) |
|
550 { |
|
551 (*current_liboctave_error_handler) ("invalid row selection"); |
|
552 return RowVector (); |
|
553 } |
|
554 |
|
555 RowVector retval (nc); |
5275
|
556 for (octave_idx_type j = 0; j < nc; j++) |
4316
|
557 retval.xelem (j) = elem (i, j); |
458
|
558 |
|
559 return retval; |
|
560 } |
|
561 |
|
562 RowVector |
|
563 Matrix::row (char *s) const |
|
564 { |
533
|
565 if (! s) |
458
|
566 { |
|
567 (*current_liboctave_error_handler) ("invalid row selection"); |
|
568 return RowVector (); |
|
569 } |
|
570 |
|
571 char c = *s; |
|
572 if (c == 'f' || c == 'F') |
5275
|
573 return row ( static_cast<octave_idx_type>(0) ); |
458
|
574 else if (c == 'l' || c == 'L') |
|
575 return row (rows () - 1); |
|
576 else |
|
577 { |
|
578 (*current_liboctave_error_handler) ("invalid row selection"); |
|
579 return RowVector (); |
|
580 } |
|
581 } |
|
582 |
|
583 ColumnVector |
5275
|
584 Matrix::column (octave_idx_type i) const |
458
|
585 { |
5275
|
586 octave_idx_type nr = rows (); |
458
|
587 if (i < 0 || i >= cols ()) |
|
588 { |
|
589 (*current_liboctave_error_handler) ("invalid column selection"); |
|
590 return ColumnVector (); |
|
591 } |
|
592 |
|
593 ColumnVector retval (nr); |
5275
|
594 for (octave_idx_type j = 0; j < nr; j++) |
4316
|
595 retval.xelem (j) = elem (j, i); |
458
|
596 |
|
597 return retval; |
|
598 } |
|
599 |
|
600 ColumnVector |
|
601 Matrix::column (char *s) const |
|
602 { |
533
|
603 if (! s) |
458
|
604 { |
|
605 (*current_liboctave_error_handler) ("invalid column selection"); |
|
606 return ColumnVector (); |
|
607 } |
|
608 |
|
609 char c = *s; |
|
610 if (c == 'f' || c == 'F') |
5275
|
611 return column (static_cast<octave_idx_type> (0)); |
458
|
612 else if (c == 'l' || c == 'L') |
|
613 return column (cols () - 1); |
|
614 else |
|
615 { |
|
616 (*current_liboctave_error_handler) ("invalid column selection"); |
|
617 return ColumnVector (); |
|
618 } |
|
619 } |
|
620 |
|
621 Matrix |
|
622 Matrix::inverse (void) const |
|
623 { |
5275
|
624 octave_idx_type info; |
458
|
625 double rcond; |
4329
|
626 return inverse (info, rcond, 0, 0); |
458
|
627 } |
|
628 |
|
629 Matrix |
5275
|
630 Matrix::inverse (octave_idx_type& info) const |
458
|
631 { |
|
632 double rcond; |
4329
|
633 return inverse (info, rcond, 0, 0); |
458
|
634 } |
|
635 |
|
636 Matrix |
5275
|
637 Matrix::inverse (octave_idx_type& info, double& rcond, int force, int calc_cond) const |
458
|
638 { |
1948
|
639 Matrix retval; |
|
640 |
5275
|
641 octave_idx_type nr = rows (); |
|
642 octave_idx_type nc = cols (); |
1948
|
643 |
458
|
644 if (nr != nc || nr == 0 || nc == 0) |
1948
|
645 (*current_liboctave_error_handler) ("inverse requires square matrix"); |
458
|
646 else |
|
647 { |
5275
|
648 Array<octave_idx_type> ipvt (nr); |
|
649 octave_idx_type *pipvt = ipvt.fortran_vec (); |
1948
|
650 |
|
651 retval = *this; |
|
652 double *tmp_data = retval.fortran_vec (); |
|
653 |
4329
|
654 Array<double> z(1); |
5275
|
655 octave_idx_type lwork = -1; |
4329
|
656 |
4330
|
657 // Query the optimum work array size. |
4329
|
658 F77_XFCN (dgetri, DGETRI, (nc, tmp_data, nr, pipvt, |
|
659 z.fortran_vec (), lwork, info)); |
|
660 |
|
661 if (f77_exception_encountered) |
|
662 { |
|
663 (*current_liboctave_error_handler) |
|
664 ("unrecoverable error in dgetri"); |
|
665 return retval; |
|
666 } |
|
667 |
5275
|
668 lwork = static_cast<octave_idx_type> (z(0)); |
4329
|
669 lwork = (lwork < 2 *nc ? 2*nc : lwork); |
|
670 z.resize (lwork); |
|
671 double *pz = z.fortran_vec (); |
|
672 |
|
673 info = 0; |
|
674 |
4330
|
675 // Calculate the norm of the matrix, for later use. |
4329
|
676 double anorm = 0; |
|
677 if (calc_cond) |
5275
|
678 anorm = retval.abs().sum().row(static_cast<octave_idx_type>(0)).max(); |
4329
|
679 |
|
680 F77_XFCN (dgetrf, DGETRF, (nc, nc, tmp_data, nr, pipvt, info)); |
1948
|
681 |
|
682 if (f77_exception_encountered) |
4329
|
683 (*current_liboctave_error_handler) ("unrecoverable error in dgetrf"); |
1948
|
684 else |
|
685 { |
4330
|
686 // Throw-away extra info LAPACK gives so as to not change output. |
4509
|
687 rcond = 0.0; |
|
688 if (info != 0) |
1948
|
689 info = -1; |
4329
|
690 else if (calc_cond) |
|
691 { |
5275
|
692 octave_idx_type dgecon_info = 0; |
5061
|
693 |
4330
|
694 // Now calculate the condition number for non-singular matrix. |
4329
|
695 char job = '1'; |
5275
|
696 Array<octave_idx_type> iz (nc); |
|
697 octave_idx_type *piz = iz.fortran_vec (); |
4552
|
698 F77_XFCN (dgecon, DGECON, (F77_CONST_CHAR_ARG2 (&job, 1), |
|
699 nc, tmp_data, nr, anorm, |
5061
|
700 rcond, pz, piz, dgecon_info |
4552
|
701 F77_CHAR_ARG_LEN (1))); |
4329
|
702 |
|
703 if (f77_exception_encountered) |
|
704 (*current_liboctave_error_handler) |
|
705 ("unrecoverable error in dgecon"); |
|
706 |
5061
|
707 if (dgecon_info != 0) |
4329
|
708 info = -1; |
|
709 } |
1948
|
710 |
|
711 if (info == -1 && ! force) |
|
712 retval = *this; // Restore matrix contents. |
|
713 else |
|
714 { |
5275
|
715 octave_idx_type dgetri_info = 0; |
5061
|
716 |
4329
|
717 F77_XFCN (dgetri, DGETRI, (nc, tmp_data, nr, pipvt, |
5061
|
718 pz, lwork, dgetri_info)); |
1948
|
719 |
|
720 if (f77_exception_encountered) |
|
721 (*current_liboctave_error_handler) |
4329
|
722 ("unrecoverable error in dgetri"); |
|
723 |
5061
|
724 if (dgetri_info != 0) |
4329
|
725 info = -1; |
1948
|
726 } |
|
727 } |
458
|
728 } |
|
729 |
1948
|
730 return retval; |
458
|
731 } |
|
732 |
740
|
733 Matrix |
4384
|
734 Matrix::pseudo_inverse (double tol) const |
740
|
735 { |
3480
|
736 SVD result (*this, SVD::economy); |
740
|
737 |
|
738 DiagMatrix S = result.singular_values (); |
|
739 Matrix U = result.left_singular_matrix (); |
|
740 Matrix V = result.right_singular_matrix (); |
|
741 |
|
742 ColumnVector sigma = S.diag (); |
|
743 |
5275
|
744 octave_idx_type r = sigma.length () - 1; |
|
745 octave_idx_type nr = rows (); |
|
746 octave_idx_type nc = cols (); |
740
|
747 |
|
748 if (tol <= 0.0) |
|
749 { |
|
750 if (nr > nc) |
|
751 tol = nr * sigma.elem (0) * DBL_EPSILON; |
|
752 else |
|
753 tol = nc * sigma.elem (0) * DBL_EPSILON; |
|
754 } |
|
755 |
|
756 while (r >= 0 && sigma.elem (r) < tol) |
|
757 r--; |
|
758 |
|
759 if (r < 0) |
|
760 return Matrix (nc, nr, 0.0); |
|
761 else |
|
762 { |
|
763 Matrix Ur = U.extract (0, 0, nr-1, r); |
|
764 DiagMatrix D = DiagMatrix (sigma.extract (0, r)) . inverse (); |
|
765 Matrix Vr = V.extract (0, 0, nc-1, r); |
|
766 return Vr * D * Ur.transpose (); |
|
767 } |
|
768 } |
|
769 |
4773
|
770 #if defined (HAVE_FFTW3) |
3827
|
771 |
|
772 ComplexMatrix |
|
773 Matrix::fourier (void) const |
|
774 { |
|
775 size_t nr = rows (); |
|
776 size_t nc = cols (); |
|
777 |
|
778 ComplexMatrix retval (nr, nc); |
|
779 |
|
780 size_t npts, nsamples; |
|
781 |
|
782 if (nr == 1 || nc == 1) |
|
783 { |
|
784 npts = nr > nc ? nr : nc; |
|
785 nsamples = 1; |
|
786 } |
|
787 else |
|
788 { |
|
789 npts = nr; |
|
790 nsamples = nc; |
|
791 } |
|
792 |
4773
|
793 const double *in (fortran_vec ()); |
3827
|
794 Complex *out (retval.fortran_vec ()); |
|
795 |
4773
|
796 octave_fftw::fft (in, out, npts, nsamples); |
3827
|
797 |
|
798 return retval; |
|
799 } |
|
800 |
|
801 ComplexMatrix |
|
802 Matrix::ifourier (void) const |
|
803 { |
|
804 size_t nr = rows (); |
|
805 size_t nc = cols (); |
|
806 |
|
807 ComplexMatrix retval (nr, nc); |
|
808 |
|
809 size_t npts, nsamples; |
|
810 |
|
811 if (nr == 1 || nc == 1) |
|
812 { |
|
813 npts = nr > nc ? nr : nc; |
|
814 nsamples = 1; |
|
815 } |
|
816 else |
|
817 { |
|
818 npts = nr; |
|
819 nsamples = nc; |
|
820 } |
|
821 |
|
822 ComplexMatrix tmp (*this); |
|
823 Complex *in (tmp.fortran_vec ()); |
|
824 Complex *out (retval.fortran_vec ()); |
|
825 |
4773
|
826 octave_fftw::ifft (in, out, npts, nsamples); |
3827
|
827 |
|
828 return retval; |
|
829 } |
|
830 |
|
831 ComplexMatrix |
|
832 Matrix::fourier2d (void) const |
|
833 { |
4773
|
834 dim_vector dv(rows (), cols ()); |
|
835 |
|
836 const double *in = fortran_vec (); |
|
837 ComplexMatrix retval (rows (), cols ()); |
|
838 octave_fftw::fftNd (in, retval.fortran_vec (), 2, dv); |
3827
|
839 |
|
840 return retval; |
|
841 } |
|
842 |
|
843 ComplexMatrix |
|
844 Matrix::ifourier2d (void) const |
|
845 { |
4773
|
846 dim_vector dv(rows (), cols ()); |
3827
|
847 |
|
848 ComplexMatrix retval (*this); |
4773
|
849 Complex *out (retval.fortran_vec ()); |
|
850 |
|
851 octave_fftw::ifftNd (out, out, 2, dv); |
3827
|
852 |
|
853 return retval; |
|
854 } |
|
855 |
|
856 #else |
|
857 |
458
|
858 ComplexMatrix |
|
859 Matrix::fourier (void) const |
|
860 { |
1948
|
861 ComplexMatrix retval; |
|
862 |
5275
|
863 octave_idx_type nr = rows (); |
|
864 octave_idx_type nc = cols (); |
|
865 |
|
866 octave_idx_type npts, nsamples; |
1948
|
867 |
458
|
868 if (nr == 1 || nc == 1) |
|
869 { |
|
870 npts = nr > nc ? nr : nc; |
|
871 nsamples = 1; |
|
872 } |
|
873 else |
|
874 { |
|
875 npts = nr; |
|
876 nsamples = nc; |
|
877 } |
|
878 |
5275
|
879 octave_idx_type nn = 4*npts+15; |
1948
|
880 |
|
881 Array<Complex> wsave (nn); |
|
882 Complex *pwsave = wsave.fortran_vec (); |
|
883 |
3585
|
884 retval = ComplexMatrix (*this); |
1948
|
885 Complex *tmp_data = retval.fortran_vec (); |
|
886 |
3887
|
887 F77_FUNC (cffti, CFFTI) (npts, pwsave); |
458
|
888 |
5275
|
889 for (octave_idx_type j = 0; j < nsamples; j++) |
4153
|
890 { |
|
891 OCTAVE_QUIT; |
|
892 |
|
893 F77_FUNC (cfftf, CFFTF) (npts, &tmp_data[npts*j], pwsave); |
|
894 } |
1948
|
895 |
|
896 return retval; |
458
|
897 } |
|
898 |
|
899 ComplexMatrix |
|
900 Matrix::ifourier (void) const |
|
901 { |
1948
|
902 ComplexMatrix retval; |
|
903 |
5275
|
904 octave_idx_type nr = rows (); |
|
905 octave_idx_type nc = cols (); |
|
906 |
|
907 octave_idx_type npts, nsamples; |
1948
|
908 |
458
|
909 if (nr == 1 || nc == 1) |
|
910 { |
|
911 npts = nr > nc ? nr : nc; |
|
912 nsamples = 1; |
|
913 } |
|
914 else |
|
915 { |
|
916 npts = nr; |
|
917 nsamples = nc; |
|
918 } |
|
919 |
5275
|
920 octave_idx_type nn = 4*npts+15; |
1948
|
921 |
|
922 Array<Complex> wsave (nn); |
|
923 Complex *pwsave = wsave.fortran_vec (); |
|
924 |
3585
|
925 retval = ComplexMatrix (*this); |
1948
|
926 Complex *tmp_data = retval.fortran_vec (); |
|
927 |
3887
|
928 F77_FUNC (cffti, CFFTI) (npts, pwsave); |
458
|
929 |
5275
|
930 for (octave_idx_type j = 0; j < nsamples; j++) |
4153
|
931 { |
|
932 OCTAVE_QUIT; |
|
933 |
|
934 F77_FUNC (cfftb, CFFTB) (npts, &tmp_data[npts*j], pwsave); |
|
935 } |
458
|
936 |
5275
|
937 for (octave_idx_type j = 0; j < npts*nsamples; j++) |
3572
|
938 tmp_data[j] = tmp_data[j] / static_cast<double> (npts); |
458
|
939 |
1948
|
940 return retval; |
458
|
941 } |
|
942 |
677
|
943 ComplexMatrix |
|
944 Matrix::fourier2d (void) const |
|
945 { |
1948
|
946 ComplexMatrix retval; |
|
947 |
5275
|
948 octave_idx_type nr = rows (); |
|
949 octave_idx_type nc = cols (); |
|
950 |
|
951 octave_idx_type npts, nsamples; |
1948
|
952 |
677
|
953 if (nr == 1 || nc == 1) |
|
954 { |
|
955 npts = nr > nc ? nr : nc; |
|
956 nsamples = 1; |
|
957 } |
|
958 else |
|
959 { |
|
960 npts = nr; |
|
961 nsamples = nc; |
|
962 } |
|
963 |
5275
|
964 octave_idx_type nn = 4*npts+15; |
1948
|
965 |
|
966 Array<Complex> wsave (nn); |
|
967 Complex *pwsave = wsave.fortran_vec (); |
|
968 |
3585
|
969 retval = ComplexMatrix (*this); |
1948
|
970 Complex *tmp_data = retval.fortran_vec (); |
|
971 |
3887
|
972 F77_FUNC (cffti, CFFTI) (npts, pwsave); |
677
|
973 |
5275
|
974 for (octave_idx_type j = 0; j < nsamples; j++) |
4153
|
975 { |
|
976 OCTAVE_QUIT; |
|
977 |
|
978 F77_FUNC (cfftf, CFFTF) (npts, &tmp_data[npts*j], pwsave); |
|
979 } |
677
|
980 |
|
981 npts = nc; |
|
982 nsamples = nr; |
|
983 nn = 4*npts+15; |
1948
|
984 |
|
985 wsave.resize (nn); |
|
986 pwsave = wsave.fortran_vec (); |
|
987 |
4773
|
988 Array<Complex> tmp (npts); |
|
989 Complex *prow = tmp.fortran_vec (); |
1948
|
990 |
3887
|
991 F77_FUNC (cffti, CFFTI) (npts, pwsave); |
677
|
992 |
5275
|
993 for (octave_idx_type j = 0; j < nsamples; j++) |
677
|
994 { |
4153
|
995 OCTAVE_QUIT; |
|
996 |
5275
|
997 for (octave_idx_type i = 0; i < npts; i++) |
1948
|
998 prow[i] = tmp_data[i*nr + j]; |
|
999 |
3887
|
1000 F77_FUNC (cfftf, CFFTF) (npts, prow, pwsave); |
677
|
1001 |
5275
|
1002 for (octave_idx_type i = 0; i < npts; i++) |
1948
|
1003 tmp_data[i*nr + j] = prow[i]; |
677
|
1004 } |
|
1005 |
1948
|
1006 return retval; |
677
|
1007 } |
|
1008 |
|
1009 ComplexMatrix |
|
1010 Matrix::ifourier2d (void) const |
|
1011 { |
1948
|
1012 ComplexMatrix retval; |
|
1013 |
5275
|
1014 octave_idx_type nr = rows (); |
|
1015 octave_idx_type nc = cols (); |
|
1016 |
|
1017 octave_idx_type npts, nsamples; |
1948
|
1018 |
677
|
1019 if (nr == 1 || nc == 1) |
|
1020 { |
|
1021 npts = nr > nc ? nr : nc; |
|
1022 nsamples = 1; |
|
1023 } |
|
1024 else |
|
1025 { |
|
1026 npts = nr; |
|
1027 nsamples = nc; |
|
1028 } |
|
1029 |
5275
|
1030 octave_idx_type nn = 4*npts+15; |
1948
|
1031 |
|
1032 Array<Complex> wsave (nn); |
|
1033 Complex *pwsave = wsave.fortran_vec (); |
|
1034 |
3585
|
1035 retval = ComplexMatrix (*this); |
1948
|
1036 Complex *tmp_data = retval.fortran_vec (); |
|
1037 |
3887
|
1038 F77_FUNC (cffti, CFFTI) (npts, pwsave); |
677
|
1039 |
5275
|
1040 for (octave_idx_type j = 0; j < nsamples; j++) |
4153
|
1041 { |
|
1042 OCTAVE_QUIT; |
|
1043 |
|
1044 F77_FUNC (cfftb, CFFTB) (npts, &tmp_data[npts*j], pwsave); |
|
1045 } |
677
|
1046 |
5275
|
1047 for (octave_idx_type j = 0; j < npts*nsamples; j++) |
3572
|
1048 tmp_data[j] = tmp_data[j] / static_cast<double> (npts); |
677
|
1049 |
|
1050 npts = nc; |
|
1051 nsamples = nr; |
|
1052 nn = 4*npts+15; |
1948
|
1053 |
|
1054 wsave.resize (nn); |
|
1055 pwsave = wsave.fortran_vec (); |
|
1056 |
4773
|
1057 Array<Complex> tmp (npts); |
|
1058 Complex *prow = tmp.fortran_vec (); |
1948
|
1059 |
3887
|
1060 F77_FUNC (cffti, CFFTI) (npts, pwsave); |
677
|
1061 |
5275
|
1062 for (octave_idx_type j = 0; j < nsamples; j++) |
677
|
1063 { |
4153
|
1064 OCTAVE_QUIT; |
|
1065 |
5275
|
1066 for (octave_idx_type i = 0; i < npts; i++) |
1948
|
1067 prow[i] = tmp_data[i*nr + j]; |
|
1068 |
3887
|
1069 F77_FUNC (cfftb, CFFTB) (npts, prow, pwsave); |
677
|
1070 |
5275
|
1071 for (octave_idx_type i = 0; i < npts; i++) |
3572
|
1072 tmp_data[i*nr + j] = prow[i] / static_cast<double> (npts); |
677
|
1073 } |
|
1074 |
1948
|
1075 return retval; |
677
|
1076 } |
|
1077 |
3827
|
1078 #endif |
|
1079 |
458
|
1080 DET |
|
1081 Matrix::determinant (void) const |
|
1082 { |
5275
|
1083 octave_idx_type info; |
458
|
1084 double rcond; |
4329
|
1085 return determinant (info, rcond, 0); |
458
|
1086 } |
|
1087 |
|
1088 DET |
5275
|
1089 Matrix::determinant (octave_idx_type& info) const |
458
|
1090 { |
|
1091 double rcond; |
4329
|
1092 return determinant (info, rcond, 0); |
458
|
1093 } |
|
1094 |
|
1095 DET |
5275
|
1096 Matrix::determinant (octave_idx_type& info, double& rcond, int calc_cond) const |
458
|
1097 { |
|
1098 DET retval; |
|
1099 |
5275
|
1100 octave_idx_type nr = rows (); |
|
1101 octave_idx_type nc = cols (); |
458
|
1102 |
|
1103 if (nr == 0 || nc == 0) |
|
1104 { |
5634
|
1105 retval = DET (1.0, 0); |
458
|
1106 } |
|
1107 else |
|
1108 { |
5275
|
1109 Array<octave_idx_type> ipvt (nr); |
|
1110 octave_idx_type *pipvt = ipvt.fortran_vec (); |
1948
|
1111 |
|
1112 Matrix atmp = *this; |
|
1113 double *tmp_data = atmp.fortran_vec (); |
|
1114 |
4329
|
1115 info = 0; |
|
1116 |
4330
|
1117 // Calculate the norm of the matrix, for later use. |
4329
|
1118 double anorm = 0; |
|
1119 if (calc_cond) |
5275
|
1120 anorm = atmp.abs().sum().row(static_cast<octave_idx_type>(0)).max(); |
4329
|
1121 |
|
1122 F77_XFCN (dgetrf, DGETRF, (nr, nr, tmp_data, nr, pipvt, info)); |
1948
|
1123 |
|
1124 if (f77_exception_encountered) |
4329
|
1125 (*current_liboctave_error_handler) ("unrecoverable error in dgetrf"); |
458
|
1126 else |
|
1127 { |
4330
|
1128 // Throw-away extra info LAPACK gives so as to not change output. |
4509
|
1129 rcond = 0.0; |
|
1130 if (info != 0) |
1948
|
1131 { |
4509
|
1132 info = -1; |
|
1133 retval = DET (); |
4329
|
1134 } |
|
1135 else |
1948
|
1136 { |
4329
|
1137 if (calc_cond) |
|
1138 { |
4330
|
1139 // Now calc the condition number for non-singular matrix. |
4329
|
1140 char job = '1'; |
|
1141 Array<double> z (4 * nc); |
|
1142 double *pz = z.fortran_vec (); |
5275
|
1143 Array<octave_idx_type> iz (nc); |
|
1144 octave_idx_type *piz = iz.fortran_vec (); |
4329
|
1145 |
4552
|
1146 F77_XFCN (dgecon, DGECON, (F77_CONST_CHAR_ARG2 (&job, 1), |
|
1147 nc, tmp_data, nr, anorm, |
|
1148 rcond, pz, piz, info |
|
1149 F77_CHAR_ARG_LEN (1))); |
4329
|
1150 |
|
1151 if (f77_exception_encountered) |
|
1152 (*current_liboctave_error_handler) |
|
1153 ("unrecoverable error in dgecon"); |
|
1154 } |
|
1155 |
4509
|
1156 if (info != 0) |
4329
|
1157 { |
|
1158 info = -1; |
|
1159 retval = DET (); |
|
1160 } |
|
1161 else |
|
1162 { |
5634
|
1163 double c = 1.0; |
|
1164 int e = 0; |
|
1165 |
|
1166 for (octave_idx_type i = 0; i < nc; i++) |
4329
|
1167 { |
5634
|
1168 if (ipvt(i) != (i+1)) |
|
1169 c = -c; |
|
1170 |
|
1171 c *= atmp(i,i); |
|
1172 |
|
1173 if (c == 0.0) |
|
1174 break; |
|
1175 |
|
1176 while (fabs (c) < 0.5) |
4329
|
1177 { |
5634
|
1178 c *= 2.0; |
|
1179 e--; |
4329
|
1180 } |
5634
|
1181 |
|
1182 while (fabs (c) >= 2.0) |
4329
|
1183 { |
5634
|
1184 c /= 2.0; |
|
1185 e++; |
4329
|
1186 } |
|
1187 } |
5634
|
1188 |
|
1189 retval = DET (c, e); |
4329
|
1190 } |
1948
|
1191 } |
458
|
1192 } |
|
1193 } |
|
1194 |
|
1195 return retval; |
|
1196 } |
|
1197 |
|
1198 Matrix |
|
1199 Matrix::solve (const Matrix& b) const |
|
1200 { |
5275
|
1201 octave_idx_type info; |
458
|
1202 double rcond; |
4329
|
1203 return solve (b, info, rcond, 0); |
458
|
1204 } |
|
1205 |
|
1206 Matrix |
5275
|
1207 Matrix::solve (const Matrix& b, octave_idx_type& info) const |
458
|
1208 { |
|
1209 double rcond; |
4329
|
1210 return solve (b, info, rcond, 0); |
458
|
1211 } |
|
1212 |
|
1213 Matrix |
5275
|
1214 Matrix::solve (const Matrix& b, octave_idx_type& info, double& rcond) const |
458
|
1215 { |
3480
|
1216 return solve (b, info, rcond, 0); |
|
1217 } |
|
1218 |
|
1219 Matrix |
5275
|
1220 Matrix::solve (const Matrix& b, octave_idx_type& info, double& rcond, |
3480
|
1221 solve_singularity_handler sing_handler) const |
|
1222 { |
458
|
1223 Matrix retval; |
|
1224 |
5275
|
1225 octave_idx_type nr = rows (); |
|
1226 octave_idx_type nc = cols (); |
1948
|
1227 |
458
|
1228 if (nr == 0 || nc == 0 || nr != nc || nr != b.rows ()) |
1948
|
1229 (*current_liboctave_error_handler) |
|
1230 ("matrix dimension mismatch solution of linear equations"); |
458
|
1231 else |
|
1232 { |
1948
|
1233 info = 0; |
|
1234 |
5275
|
1235 Array<octave_idx_type> ipvt (nr); |
|
1236 octave_idx_type *pipvt = ipvt.fortran_vec (); |
1948
|
1237 |
|
1238 Matrix atmp = *this; |
|
1239 double *tmp_data = atmp.fortran_vec (); |
|
1240 |
4329
|
1241 Array<double> z (4 * nc); |
|
1242 double *pz = z.fortran_vec (); |
5275
|
1243 Array<octave_idx_type> iz (nc); |
|
1244 octave_idx_type *piz = iz.fortran_vec (); |
4329
|
1245 |
4330
|
1246 // Calculate the norm of the matrix, for later use. |
5275
|
1247 double anorm = atmp.abs().sum().row(static_cast<octave_idx_type>(0)).max(); |
4329
|
1248 |
|
1249 F77_XFCN (dgetrf, DGETRF, (nr, nr, tmp_data, nr, pipvt, info)); |
1948
|
1250 |
|
1251 if (f77_exception_encountered) |
4329
|
1252 (*current_liboctave_error_handler) ("unrecoverable error in dgetrf"); |
1948
|
1253 else |
|
1254 { |
4330
|
1255 // Throw-away extra info LAPACK gives so as to not change output. |
4509
|
1256 rcond = 0.0; |
|
1257 if (info != 0) |
1948
|
1258 { |
|
1259 info = -2; |
3480
|
1260 |
|
1261 if (sing_handler) |
|
1262 sing_handler (rcond); |
|
1263 else |
|
1264 (*current_liboctave_error_handler) |
4329
|
1265 ("matrix singular to machine precision"); |
|
1266 |
|
1267 } |
|
1268 else |
1948
|
1269 { |
4330
|
1270 // Now calculate the condition number for non-singular matrix. |
4329
|
1271 char job = '1'; |
4552
|
1272 F77_XFCN (dgecon, DGECON, (F77_CONST_CHAR_ARG2 (&job, 1), |
|
1273 nc, tmp_data, nr, anorm, |
|
1274 rcond, pz, piz, info |
|
1275 F77_CHAR_ARG_LEN (1))); |
4329
|
1276 |
|
1277 if (f77_exception_encountered) |
|
1278 (*current_liboctave_error_handler) |
|
1279 ("unrecoverable error in dgecon"); |
|
1280 |
4509
|
1281 if (info != 0) |
4329
|
1282 info = -2; |
|
1283 |
|
1284 volatile double rcond_plus_one = rcond + 1.0; |
|
1285 |
|
1286 if (rcond_plus_one == 1.0 || xisnan (rcond)) |
1948
|
1287 { |
4329
|
1288 info = -2; |
|
1289 |
|
1290 if (sing_handler) |
|
1291 sing_handler (rcond); |
|
1292 else |
|
1293 (*current_liboctave_error_handler) |
|
1294 ("matrix singular to machine precision, rcond = %g", |
|
1295 rcond); |
|
1296 } |
|
1297 else |
|
1298 { |
|
1299 retval = b; |
|
1300 double *result = retval.fortran_vec (); |
|
1301 |
5275
|
1302 octave_idx_type b_nc = b.cols (); |
4329
|
1303 |
4587
|
1304 job = 'N'; |
4552
|
1305 F77_XFCN (dgetrs, DGETRS, (F77_CONST_CHAR_ARG2 (&job, 1), |
|
1306 nr, b_nc, tmp_data, nr, |
|
1307 pipvt, result, b.rows(), info |
|
1308 F77_CHAR_ARG_LEN (1))); |
4329
|
1309 |
1948
|
1310 if (f77_exception_encountered) |
4329
|
1311 (*current_liboctave_error_handler) |
|
1312 ("unrecoverable error in dgetrs"); |
1948
|
1313 } |
|
1314 } |
|
1315 } |
458
|
1316 } |
|
1317 |
|
1318 return retval; |
|
1319 } |
|
1320 |
|
1321 ComplexMatrix |
|
1322 Matrix::solve (const ComplexMatrix& b) const |
|
1323 { |
|
1324 ComplexMatrix tmp (*this); |
|
1325 return tmp.solve (b); |
|
1326 } |
|
1327 |
|
1328 ComplexMatrix |
5275
|
1329 Matrix::solve (const ComplexMatrix& b, octave_idx_type& info) const |
458
|
1330 { |
|
1331 ComplexMatrix tmp (*this); |
|
1332 return tmp.solve (b, info); |
|
1333 } |
|
1334 |
|
1335 ComplexMatrix |
5275
|
1336 Matrix::solve (const ComplexMatrix& b, octave_idx_type& info, double& rcond) const |
458
|
1337 { |
|
1338 ComplexMatrix tmp (*this); |
|
1339 return tmp.solve (b, info, rcond); |
|
1340 } |
|
1341 |
3480
|
1342 ComplexMatrix |
5275
|
1343 Matrix::solve (const ComplexMatrix& b, octave_idx_type& info, double& rcond, |
3480
|
1344 solve_singularity_handler sing_handler) const |
|
1345 { |
|
1346 ComplexMatrix tmp (*this); |
|
1347 return tmp.solve (b, info, rcond, sing_handler); |
|
1348 } |
|
1349 |
458
|
1350 ColumnVector |
|
1351 Matrix::solve (const ColumnVector& b) const |
|
1352 { |
5275
|
1353 octave_idx_type info; double rcond; |
458
|
1354 return solve (b, info, rcond); |
|
1355 } |
|
1356 |
|
1357 ColumnVector |
5275
|
1358 Matrix::solve (const ColumnVector& b, octave_idx_type& info) const |
458
|
1359 { |
|
1360 double rcond; |
|
1361 return solve (b, info, rcond); |
|
1362 } |
|
1363 |
|
1364 ColumnVector |
5275
|
1365 Matrix::solve (const ColumnVector& b, octave_idx_type& info, double& rcond) const |
458
|
1366 { |
3480
|
1367 return solve (b, info, rcond, 0); |
|
1368 } |
|
1369 |
|
1370 ColumnVector |
5275
|
1371 Matrix::solve (const ColumnVector& b, octave_idx_type& info, double& rcond, |
3480
|
1372 solve_singularity_handler sing_handler) const |
|
1373 { |
458
|
1374 ColumnVector retval; |
|
1375 |
5275
|
1376 octave_idx_type nr = rows (); |
|
1377 octave_idx_type nc = cols (); |
1948
|
1378 |
458
|
1379 if (nr == 0 || nc == 0 || nr != nc || nr != b.length ()) |
1948
|
1380 (*current_liboctave_error_handler) |
|
1381 ("matrix dimension mismatch solution of linear equations"); |
458
|
1382 else |
|
1383 { |
1948
|
1384 info = 0; |
|
1385 |
5275
|
1386 Array<octave_idx_type> ipvt (nr); |
|
1387 octave_idx_type *pipvt = ipvt.fortran_vec (); |
1948
|
1388 |
|
1389 Matrix atmp = *this; |
|
1390 double *tmp_data = atmp.fortran_vec (); |
|
1391 |
4329
|
1392 Array<double> z (4 * nc); |
|
1393 double *pz = z.fortran_vec (); |
5275
|
1394 Array<octave_idx_type> iz (nc); |
|
1395 octave_idx_type *piz = iz.fortran_vec (); |
4329
|
1396 |
4330
|
1397 // Calculate the norm of the matrix, for later use. |
5275
|
1398 double anorm = atmp.abs().sum().row(static_cast<octave_idx_type>(0)).max(); |
4329
|
1399 |
|
1400 F77_XFCN (dgetrf, DGETRF, (nr, nr, tmp_data, nr, pipvt, info)); |
1948
|
1401 |
|
1402 if (f77_exception_encountered) |
4329
|
1403 (*current_liboctave_error_handler) ("unrecoverable error in dgetrf"); |
1948
|
1404 else |
|
1405 { |
4330
|
1406 // Throw-away extra info LAPACK gives so as to not change output. |
4509
|
1407 rcond = 0.0; |
|
1408 if (info > 0) |
1948
|
1409 { |
|
1410 info = -2; |
3480
|
1411 |
|
1412 if (sing_handler) |
|
1413 sing_handler (rcond); |
|
1414 else |
|
1415 (*current_liboctave_error_handler) |
4329
|
1416 ("matrix singular to machine precision"); |
|
1417 |
|
1418 } |
|
1419 else |
1948
|
1420 { |
4330
|
1421 // Now calculate the condition number for non-singular matrix. |
4329
|
1422 char job = '1'; |
4552
|
1423 F77_XFCN (dgecon, DGECON, (F77_CONST_CHAR_ARG2 (&job, 1), |
|
1424 nc, tmp_data, nr, anorm, |
|
1425 rcond, pz, piz, info |
|
1426 F77_CHAR_ARG_LEN (1))); |
4329
|
1427 |
1948
|
1428 if (f77_exception_encountered) |
4329
|
1429 (*current_liboctave_error_handler) |
|
1430 ("unrecoverable error in dgecon"); |
|
1431 |
4509
|
1432 if (info != 0) |
4329
|
1433 info = -2; |
|
1434 |
|
1435 volatile double rcond_plus_one = rcond + 1.0; |
|
1436 |
|
1437 if (rcond_plus_one == 1.0 || xisnan (rcond)) |
|
1438 { |
|
1439 info = -2; |
|
1440 |
|
1441 if (sing_handler) |
|
1442 sing_handler (rcond); |
|
1443 else |
|
1444 (*current_liboctave_error_handler) |
|
1445 ("matrix singular to machine precision, rcond = %g", |
|
1446 rcond); |
|
1447 } |
|
1448 else |
|
1449 { |
|
1450 retval = b; |
|
1451 double *result = retval.fortran_vec (); |
|
1452 |
4587
|
1453 job = 'N'; |
4552
|
1454 F77_XFCN (dgetrs, DGETRS, (F77_CONST_CHAR_ARG2 (&job, 1), |
|
1455 nr, 1, tmp_data, nr, pipvt, |
|
1456 result, b.length(), info |
|
1457 F77_CHAR_ARG_LEN (1))); |
4329
|
1458 |
|
1459 if (f77_exception_encountered) |
|
1460 (*current_liboctave_error_handler) |
|
1461 ("unrecoverable error in dgetrs"); |
|
1462 } |
1948
|
1463 } |
|
1464 } |
458
|
1465 } |
4329
|
1466 |
458
|
1467 return retval; |
|
1468 } |
|
1469 |
|
1470 ComplexColumnVector |
|
1471 Matrix::solve (const ComplexColumnVector& b) const |
|
1472 { |
|
1473 ComplexMatrix tmp (*this); |
|
1474 return tmp.solve (b); |
|
1475 } |
|
1476 |
|
1477 ComplexColumnVector |
5275
|
1478 Matrix::solve (const ComplexColumnVector& b, octave_idx_type& info) const |
458
|
1479 { |
|
1480 ComplexMatrix tmp (*this); |
|
1481 return tmp.solve (b, info); |
|
1482 } |
|
1483 |
|
1484 ComplexColumnVector |
5275
|
1485 Matrix::solve (const ComplexColumnVector& b, octave_idx_type& info, double& rcond) const |
458
|
1486 { |
|
1487 ComplexMatrix tmp (*this); |
|
1488 return tmp.solve (b, info, rcond); |
|
1489 } |
|
1490 |
3480
|
1491 ComplexColumnVector |
5275
|
1492 Matrix::solve (const ComplexColumnVector& b, octave_idx_type& info, double& rcond, |
3480
|
1493 solve_singularity_handler sing_handler) const |
|
1494 { |
|
1495 ComplexMatrix tmp (*this); |
|
1496 return tmp.solve (b, info, rcond, sing_handler); |
|
1497 } |
|
1498 |
458
|
1499 Matrix |
|
1500 Matrix::lssolve (const Matrix& b) const |
|
1501 { |
5275
|
1502 octave_idx_type info; |
|
1503 octave_idx_type rank; |
458
|
1504 return lssolve (b, info, rank); |
|
1505 } |
|
1506 |
|
1507 Matrix |
5275
|
1508 Matrix::lssolve (const Matrix& b, octave_idx_type& info) const |
458
|
1509 { |
5275
|
1510 octave_idx_type rank; |
458
|
1511 return lssolve (b, info, rank); |
|
1512 } |
|
1513 |
|
1514 Matrix |
5275
|
1515 Matrix::lssolve (const Matrix& b, octave_idx_type& info, octave_idx_type& rank) const |
458
|
1516 { |
1948
|
1517 Matrix retval; |
|
1518 |
5275
|
1519 octave_idx_type nrhs = b.cols (); |
|
1520 |
|
1521 octave_idx_type m = rows (); |
|
1522 octave_idx_type n = cols (); |
458
|
1523 |
|
1524 if (m == 0 || n == 0 || m != b.rows ()) |
1948
|
1525 (*current_liboctave_error_handler) |
|
1526 ("matrix dimension mismatch in solution of least squares problem"); |
|
1527 else |
458
|
1528 { |
1948
|
1529 Matrix atmp = *this; |
|
1530 double *tmp_data = atmp.fortran_vec (); |
|
1531 |
5275
|
1532 octave_idx_type nrr = m > n ? m : n; |
3754
|
1533 Matrix result (nrr, nrhs, 0.0); |
1948
|
1534 |
5275
|
1535 for (octave_idx_type j = 0; j < nrhs; j++) |
|
1536 for (octave_idx_type i = 0; i < m; i++) |
1948
|
1537 result.elem (i, j) = b.elem (i, j); |
|
1538 |
|
1539 double *presult = result.fortran_vec (); |
|
1540 |
5275
|
1541 octave_idx_type len_s = m < n ? m : n; |
1948
|
1542 Array<double> s (len_s); |
|
1543 double *ps = s.fortran_vec (); |
|
1544 |
|
1545 double rcond = -1.0; |
|
1546 |
3752
|
1547 // Ask DGELSS what the dimension of WORK should be. |
|
1548 |
5275
|
1549 octave_idx_type lwork = -1; |
3752
|
1550 |
|
1551 Array<double> work (1); |
1948
|
1552 |
|
1553 F77_XFCN (dgelss, DGELSS, (m, n, nrhs, tmp_data, m, presult, nrr, ps, |
3752
|
1554 rcond, rank, work.fortran_vec (), |
|
1555 lwork, info)); |
1948
|
1556 |
|
1557 if (f77_exception_encountered) |
|
1558 (*current_liboctave_error_handler) ("unrecoverable error in dgelss"); |
|
1559 else |
|
1560 { |
5275
|
1561 lwork = static_cast<octave_idx_type> (work(0)); |
3752
|
1562 work.resize (lwork); |
|
1563 |
|
1564 F77_XFCN (dgelss, DGELSS, (m, n, nrhs, tmp_data, m, presult, |
|
1565 nrr, ps, rcond, rank, |
|
1566 work.fortran_vec (), lwork, info)); |
|
1567 |
|
1568 if (f77_exception_encountered) |
|
1569 (*current_liboctave_error_handler) |
|
1570 ("unrecoverable error in dgelss"); |
|
1571 else |
|
1572 { |
|
1573 retval.resize (n, nrhs); |
5275
|
1574 for (octave_idx_type j = 0; j < nrhs; j++) |
|
1575 for (octave_idx_type i = 0; i < n; i++) |
3752
|
1576 retval.elem (i, j) = result.elem (i, j); |
|
1577 } |
1948
|
1578 } |
458
|
1579 } |
|
1580 |
|
1581 return retval; |
|
1582 } |
|
1583 |
|
1584 ComplexMatrix |
|
1585 Matrix::lssolve (const ComplexMatrix& b) const |
|
1586 { |
|
1587 ComplexMatrix tmp (*this); |
5275
|
1588 octave_idx_type info; |
|
1589 octave_idx_type rank; |
1484
|
1590 return tmp.lssolve (b, info, rank); |
458
|
1591 } |
|
1592 |
|
1593 ComplexMatrix |
5275
|
1594 Matrix::lssolve (const ComplexMatrix& b, octave_idx_type& info) const |
458
|
1595 { |
|
1596 ComplexMatrix tmp (*this); |
5275
|
1597 octave_idx_type rank; |
1484
|
1598 return tmp.lssolve (b, info, rank); |
458
|
1599 } |
|
1600 |
|
1601 ComplexMatrix |
5275
|
1602 Matrix::lssolve (const ComplexMatrix& b, octave_idx_type& info, octave_idx_type& rank) const |
458
|
1603 { |
|
1604 ComplexMatrix tmp (*this); |
1484
|
1605 return tmp.lssolve (b, info, rank); |
458
|
1606 } |
|
1607 |
|
1608 ColumnVector |
|
1609 Matrix::lssolve (const ColumnVector& b) const |
|
1610 { |
5275
|
1611 octave_idx_type info; |
|
1612 octave_idx_type rank; |
1484
|
1613 return lssolve (b, info, rank); |
458
|
1614 } |
|
1615 |
|
1616 ColumnVector |
5275
|
1617 Matrix::lssolve (const ColumnVector& b, octave_idx_type& info) const |
458
|
1618 { |
5275
|
1619 octave_idx_type rank; |
458
|
1620 return lssolve (b, info, rank); |
|
1621 } |
|
1622 |
|
1623 ColumnVector |
5275
|
1624 Matrix::lssolve (const ColumnVector& b, octave_idx_type& info, octave_idx_type& rank) const |
458
|
1625 { |
1948
|
1626 ColumnVector retval; |
|
1627 |
5275
|
1628 octave_idx_type nrhs = 1; |
|
1629 |
|
1630 octave_idx_type m = rows (); |
|
1631 octave_idx_type n = cols (); |
458
|
1632 |
|
1633 if (m == 0 || n == 0 || m != b.length ()) |
1948
|
1634 (*current_liboctave_error_handler) |
|
1635 ("matrix dimension mismatch in solution of least squares problem"); |
|
1636 else |
458
|
1637 { |
1948
|
1638 Matrix atmp = *this; |
|
1639 double *tmp_data = atmp.fortran_vec (); |
|
1640 |
5275
|
1641 octave_idx_type nrr = m > n ? m : n; |
1948
|
1642 ColumnVector result (nrr); |
|
1643 |
5275
|
1644 for (octave_idx_type i = 0; i < m; i++) |
1948
|
1645 result.elem (i) = b.elem (i); |
|
1646 |
|
1647 double *presult = result.fortran_vec (); |
|
1648 |
5275
|
1649 octave_idx_type len_s = m < n ? m : n; |
1948
|
1650 Array<double> s (len_s); |
|
1651 double *ps = s.fortran_vec (); |
|
1652 |
|
1653 double rcond = -1.0; |
|
1654 |
3752
|
1655 // Ask DGELSS what the dimension of WORK should be. |
|
1656 |
5275
|
1657 octave_idx_type lwork = -1; |
3752
|
1658 |
|
1659 Array<double> work (1); |
|
1660 |
|
1661 F77_XFCN (dgelss, DGELSS, (m, n, nrhs, tmp_data, m, presult, nrr, ps, |
|
1662 rcond, rank, work.fortran_vec (), |
|
1663 lwork, info)); |
1948
|
1664 |
|
1665 if (f77_exception_encountered) |
|
1666 (*current_liboctave_error_handler) ("unrecoverable error in dgelss"); |
|
1667 else |
|
1668 { |
5275
|
1669 lwork = static_cast<octave_idx_type> (work(0)); |
3752
|
1670 work.resize (lwork); |
|
1671 |
|
1672 F77_XFCN (dgelss, DGELSS, (m, n, nrhs, tmp_data, m, presult, |
|
1673 nrr, ps, rcond, rank, |
|
1674 work.fortran_vec (), lwork, info)); |
|
1675 |
|
1676 if (f77_exception_encountered) |
|
1677 (*current_liboctave_error_handler) |
|
1678 ("unrecoverable error in dgelss"); |
|
1679 else |
|
1680 { |
|
1681 retval.resize (n); |
5275
|
1682 for (octave_idx_type i = 0; i < n; i++) |
3752
|
1683 retval.elem (i) = result.elem (i); |
|
1684 } |
1948
|
1685 } |
458
|
1686 } |
|
1687 |
|
1688 return retval; |
|
1689 } |
|
1690 |
|
1691 ComplexColumnVector |
|
1692 Matrix::lssolve (const ComplexColumnVector& b) const |
|
1693 { |
|
1694 ComplexMatrix tmp (*this); |
|
1695 return tmp.lssolve (b); |
|
1696 } |
|
1697 |
|
1698 ComplexColumnVector |
5275
|
1699 Matrix::lssolve (const ComplexColumnVector& b, octave_idx_type& info) const |
458
|
1700 { |
|
1701 ComplexMatrix tmp (*this); |
|
1702 return tmp.lssolve (b, info); |
|
1703 } |
|
1704 |
|
1705 ComplexColumnVector |
5275
|
1706 Matrix::lssolve (const ComplexColumnVector& b, octave_idx_type& info, octave_idx_type& rank) const |
458
|
1707 { |
|
1708 ComplexMatrix tmp (*this); |
|
1709 return tmp.lssolve (b, info, rank); |
|
1710 } |
|
1711 |
1819
|
1712 // Constants for matrix exponential calculation. |
|
1713 |
|
1714 static double padec [] = |
|
1715 { |
|
1716 5.0000000000000000e-1, |
|
1717 1.1666666666666667e-1, |
|
1718 1.6666666666666667e-2, |
|
1719 1.6025641025641026e-3, |
|
1720 1.0683760683760684e-4, |
|
1721 4.8562548562548563e-6, |
|
1722 1.3875013875013875e-7, |
|
1723 1.9270852604185938e-9, |
|
1724 }; |
|
1725 |
|
1726 Matrix |
|
1727 Matrix::expm (void) const |
|
1728 { |
|
1729 Matrix retval; |
|
1730 |
|
1731 Matrix m = *this; |
|
1732 |
5275
|
1733 octave_idx_type nc = columns (); |
1819
|
1734 |
3130
|
1735 // Preconditioning step 1: trace normalization to reduce dynamic |
|
1736 // range of poles, but avoid making stable eigenvalues unstable. |
|
1737 |
1819
|
1738 // trace shift value |
3331
|
1739 volatile double trshift = 0.0; |
1819
|
1740 |
5275
|
1741 for (octave_idx_type i = 0; i < nc; i++) |
1819
|
1742 trshift += m.elem (i, i); |
|
1743 |
|
1744 trshift /= nc; |
|
1745 |
3130
|
1746 if (trshift > 0.0) |
|
1747 { |
5275
|
1748 for (octave_idx_type i = 0; i < nc; i++) |
3130
|
1749 m.elem (i, i) -= trshift; |
|
1750 } |
1819
|
1751 |
3331
|
1752 // Preconditioning step 2: balancing; code follows development |
|
1753 // in AEPBAL |
|
1754 |
|
1755 double *p_m = m.fortran_vec (); |
|
1756 |
5275
|
1757 octave_idx_type info, ilo, ihi, ilos, ihis; |
3468
|
1758 Array<double> dpermute (nc); |
|
1759 Array<double> dscale (nc); |
3466
|
1760 |
3468
|
1761 // permutation first |
|
1762 char job = 'P'; |
4552
|
1763 F77_XFCN (dgebal, DGEBAL, (F77_CONST_CHAR_ARG2 (&job, 1), |
|
1764 nc, p_m, nc, ilo, ihi, |
|
1765 dpermute.fortran_vec (), info |
|
1766 F77_CHAR_ARG_LEN (1))); |
3466
|
1767 |
3468
|
1768 // then scaling |
|
1769 job = 'S'; |
4552
|
1770 F77_XFCN (dgebal, DGEBAL, (F77_CONST_CHAR_ARG2 (&job, 1), |
|
1771 nc, p_m, nc, ilos, ihis, |
|
1772 dscale.fortran_vec (), info |
|
1773 F77_CHAR_ARG_LEN (1))); |
3331
|
1774 |
|
1775 if (f77_exception_encountered) |
|
1776 { |
|
1777 (*current_liboctave_error_handler) ("unrecoverable error in dgebal"); |
|
1778 return retval; |
|
1779 } |
|
1780 |
1819
|
1781 // Preconditioning step 3: scaling. |
3331
|
1782 |
1819
|
1783 ColumnVector work(nc); |
3130
|
1784 double inf_norm; |
3331
|
1785 |
4552
|
1786 F77_XFCN (xdlange, XDLANGE, (F77_CONST_CHAR_ARG2 ("I", 1), |
|
1787 nc, nc, m.fortran_vec (), nc, |
|
1788 work.fortran_vec (), inf_norm |
|
1789 F77_CHAR_ARG_LEN (1))); |
3331
|
1790 |
|
1791 if (f77_exception_encountered) |
|
1792 { |
|
1793 (*current_liboctave_error_handler) ("unrecoverable error in dlange"); |
|
1794 return retval; |
|
1795 } |
1819
|
1796 |
5275
|
1797 octave_idx_type sqpow = static_cast<octave_idx_type> (inf_norm > 0.0 |
1819
|
1798 ? (1.0 + log (inf_norm) / log (2.0)) |
|
1799 : 0.0); |
3331
|
1800 |
1819
|
1801 // Check whether we need to square at all. |
3331
|
1802 |
1819
|
1803 if (sqpow < 0) |
|
1804 sqpow = 0; |
3331
|
1805 |
1819
|
1806 if (sqpow > 0) |
|
1807 { |
|
1808 double scale_factor = 1.0; |
5275
|
1809 for (octave_idx_type i = 0; i < sqpow; i++) |
1819
|
1810 scale_factor *= 2.0; |
3331
|
1811 |
1819
|
1812 m = m / scale_factor; |
|
1813 } |
3331
|
1814 |
1819
|
1815 // npp, dpp: pade' approx polynomial matrices. |
3331
|
1816 |
1819
|
1817 Matrix npp (nc, nc, 0.0); |
|
1818 Matrix dpp = npp; |
3331
|
1819 |
1819
|
1820 // Now powers a^8 ... a^1. |
3331
|
1821 |
5275
|
1822 octave_idx_type minus_one_j = -1; |
|
1823 for (octave_idx_type j = 7; j >= 0; j--) |
1819
|
1824 { |
3573
|
1825 npp = m * npp + padec[j] * m; |
|
1826 dpp = m * dpp + (minus_one_j * padec[j]) * m; |
1819
|
1827 minus_one_j *= -1; |
|
1828 } |
3331
|
1829 |
1819
|
1830 // Zero power. |
3331
|
1831 |
1819
|
1832 dpp = -dpp; |
5275
|
1833 for (octave_idx_type j = 0; j < nc; j++) |
1819
|
1834 { |
|
1835 npp.elem (j, j) += 1.0; |
|
1836 dpp.elem (j, j) += 1.0; |
|
1837 } |
3331
|
1838 |
1819
|
1839 // Compute pade approximation = inverse (dpp) * npp. |
|
1840 |
3331
|
1841 retval = dpp.solve (npp, info); |
|
1842 |
1819
|
1843 // Reverse preconditioning step 3: repeated squaring. |
3331
|
1844 |
1819
|
1845 while (sqpow) |
|
1846 { |
|
1847 retval = retval * retval; |
|
1848 sqpow--; |
|
1849 } |
3331
|
1850 |
1819
|
1851 // Reverse preconditioning step 2: inverse balancing. |
3466
|
1852 // apply inverse scaling to computed exponential |
5275
|
1853 for (octave_idx_type i = 0; i < nc; i++) |
|
1854 for (octave_idx_type j = 0; j < nc; j++) |
3468
|
1855 retval(i,j) *= dscale(i) / dscale(j); |
3466
|
1856 |
4153
|
1857 OCTAVE_QUIT; |
|
1858 |
3466
|
1859 // construct balancing permutation vector |
5275
|
1860 Array<octave_idx_type> iperm (nc); |
|
1861 for (octave_idx_type i = 0; i < nc; i++) |
4593
|
1862 iperm(i) = i; // identity permutation |
3466
|
1863 |
|
1864 // leading permutations in forward order |
5275
|
1865 for (octave_idx_type i = 0; i < (ilo-1); i++) |
3468
|
1866 { |
5275
|
1867 octave_idx_type swapidx = static_cast<octave_idx_type> (dpermute(i)) - 1; |
|
1868 octave_idx_type tmp = iperm(i); |
4593
|
1869 iperm(i) = iperm (swapidx); |
|
1870 iperm(swapidx) = tmp; |
3468
|
1871 } |
3466
|
1872 |
|
1873 // trailing permutations must be done in reverse order |
5275
|
1874 for (octave_idx_type i = nc - 1; i >= ihi; i--) |
3468
|
1875 { |
5275
|
1876 octave_idx_type swapidx = static_cast<octave_idx_type> (dpermute(i)) - 1; |
|
1877 octave_idx_type tmp = iperm(i); |
4593
|
1878 iperm(i) = iperm(swapidx); |
|
1879 iperm(swapidx) = tmp; |
3468
|
1880 } |
3466
|
1881 |
|
1882 // construct inverse balancing permutation vector |
5275
|
1883 Array<octave_idx_type> invpvec (nc); |
|
1884 for (octave_idx_type i = 0; i < nc; i++) |
4593
|
1885 invpvec(iperm(i)) = i; // Thanks to R. A. Lippert for this method |
4153
|
1886 |
|
1887 OCTAVE_QUIT; |
3466
|
1888 |
|
1889 Matrix tmpMat = retval; |
5275
|
1890 for (octave_idx_type i = 0; i < nc; i++) |
|
1891 for (octave_idx_type j = 0; j < nc; j++) |
3468
|
1892 retval(i,j) = tmpMat(invpvec(i),invpvec(j)); |
3466
|
1893 |
1819
|
1894 // Reverse preconditioning step 1: fix trace normalization. |
3331
|
1895 |
3130
|
1896 if (trshift > 0.0) |
|
1897 retval = exp (trshift) * retval; |
|
1898 |
|
1899 return retval; |
1819
|
1900 } |
|
1901 |
458
|
1902 Matrix& |
|
1903 Matrix::operator += (const DiagMatrix& a) |
|
1904 { |
5275
|
1905 octave_idx_type nr = rows (); |
|
1906 octave_idx_type nc = cols (); |
|
1907 |
|
1908 octave_idx_type a_nr = a.rows (); |
|
1909 octave_idx_type a_nc = a.cols (); |
2385
|
1910 |
|
1911 if (nr != a_nr || nc != a_nc) |
458
|
1912 { |
2385
|
1913 gripe_nonconformant ("operator +=", nr, nc, a_nr, a_nc); |
458
|
1914 return *this; |
|
1915 } |
|
1916 |
5275
|
1917 for (octave_idx_type i = 0; i < a.length (); i++) |
458
|
1918 elem (i, i) += a.elem (i, i); |
|
1919 |
|
1920 return *this; |
|
1921 } |
|
1922 |
|
1923 Matrix& |
|
1924 Matrix::operator -= (const DiagMatrix& a) |
|
1925 { |
5275
|
1926 octave_idx_type nr = rows (); |
|
1927 octave_idx_type nc = cols (); |
|
1928 |
|
1929 octave_idx_type a_nr = a.rows (); |
|
1930 octave_idx_type a_nc = a.cols (); |
2385
|
1931 |
|
1932 if (nr != a_nr || nc != a_nc) |
458
|
1933 { |
2385
|
1934 gripe_nonconformant ("operator -=", nr, nc, a_nr, a_nc); |
458
|
1935 return *this; |
|
1936 } |
|
1937 |
5275
|
1938 for (octave_idx_type i = 0; i < a.length (); i++) |
458
|
1939 elem (i, i) -= a.elem (i, i); |
|
1940 |
|
1941 return *this; |
|
1942 } |
|
1943 |
|
1944 // unary operations |
|
1945 |
2964
|
1946 boolMatrix |
458
|
1947 Matrix::operator ! (void) const |
|
1948 { |
5275
|
1949 octave_idx_type nr = rows (); |
|
1950 octave_idx_type nc = cols (); |
458
|
1951 |
2964
|
1952 boolMatrix b (nr, nc); |
458
|
1953 |
5275
|
1954 for (octave_idx_type j = 0; j < nc; j++) |
|
1955 for (octave_idx_type i = 0; i < nr; i++) |
458
|
1956 b.elem (i, j) = ! elem (i, j); |
|
1957 |
|
1958 return b; |
|
1959 } |
|
1960 |
1205
|
1961 // column vector by row vector -> matrix operations |
458
|
1962 |
1205
|
1963 Matrix |
|
1964 operator * (const ColumnVector& v, const RowVector& a) |
458
|
1965 { |
1948
|
1966 Matrix retval; |
|
1967 |
5275
|
1968 octave_idx_type len = v.length (); |
3233
|
1969 |
|
1970 if (len != 0) |
1205
|
1971 { |
5275
|
1972 octave_idx_type a_len = a.length (); |
3233
|
1973 |
|
1974 retval.resize (len, a_len); |
|
1975 double *c = retval.fortran_vec (); |
|
1976 |
4552
|
1977 F77_XFCN (dgemm, DGEMM, (F77_CONST_CHAR_ARG2 ("N", 1), |
|
1978 F77_CONST_CHAR_ARG2 ("N", 1), |
|
1979 len, a_len, 1, 1.0, v.data (), len, |
|
1980 a.data (), 1, 0.0, c, len |
|
1981 F77_CHAR_ARG_LEN (1) |
|
1982 F77_CHAR_ARG_LEN (1))); |
3233
|
1983 |
|
1984 if (f77_exception_encountered) |
|
1985 (*current_liboctave_error_handler) |
|
1986 ("unrecoverable error in dgemm"); |
1205
|
1987 } |
458
|
1988 |
1948
|
1989 return retval; |
458
|
1990 } |
|
1991 |
|
1992 // other operations. |
|
1993 |
|
1994 Matrix |
2676
|
1995 Matrix::map (d_d_Mapper f) const |
1205
|
1996 { |
2676
|
1997 Matrix b (*this); |
|
1998 return b.apply (f); |
1205
|
1999 } |
|
2000 |
3248
|
2001 boolMatrix |
|
2002 Matrix::map (b_d_Mapper f) const |
|
2003 { |
5275
|
2004 octave_idx_type nr = rows (); |
|
2005 octave_idx_type nc = cols (); |
3248
|
2006 |
|
2007 boolMatrix retval (nr, nc); |
|
2008 |
5275
|
2009 for (octave_idx_type j = 0; j < nc; j++) |
|
2010 for (octave_idx_type i = 0; i < nr; i++) |
3248
|
2011 retval(i,j) = f (elem(i,j)); |
|
2012 |
|
2013 return retval; |
|
2014 } |
|
2015 |
2676
|
2016 Matrix& |
|
2017 Matrix::apply (d_d_Mapper f) |
458
|
2018 { |
|
2019 double *d = fortran_vec (); // Ensures only one reference to my privates! |
|
2020 |
5275
|
2021 for (octave_idx_type i = 0; i < length (); i++) |
458
|
2022 d[i] = f (d[i]); |
2676
|
2023 |
|
2024 return *this; |
458
|
2025 } |
|
2026 |
2385
|
2027 bool |
4431
|
2028 Matrix::any_element_is_negative (bool neg_zero) const |
2385
|
2029 { |
5275
|
2030 octave_idx_type nel = nelem (); |
2385
|
2031 |
4431
|
2032 if (neg_zero) |
|
2033 { |
5275
|
2034 for (octave_idx_type i = 0; i < nel; i++) |
4634
|
2035 if (lo_ieee_signbit (elem (i))) |
|
2036 return true; |
4431
|
2037 } |
|
2038 else |
|
2039 { |
5275
|
2040 for (octave_idx_type i = 0; i < nel; i++) |
4634
|
2041 if (elem (i) < 0) |
|
2042 return true; |
4431
|
2043 } |
2385
|
2044 |
|
2045 return false; |
|
2046 } |
|
2047 |
|
2048 |
|
2049 bool |
|
2050 Matrix::any_element_is_inf_or_nan (void) const |
|
2051 { |
5275
|
2052 octave_idx_type nel = nelem (); |
|
2053 |
|
2054 for (octave_idx_type i = 0; i < nel; i++) |
4634
|
2055 { |
|
2056 double val = elem (i); |
|
2057 if (xisinf (val) || xisnan (val)) |
|
2058 return true; |
|
2059 } |
|
2060 |
|
2061 return false; |
2385
|
2062 } |
|
2063 |
|
2064 bool |
|
2065 Matrix::all_elements_are_int_or_inf_or_nan (void) const |
|
2066 { |
5275
|
2067 octave_idx_type nel = nelem (); |
|
2068 |
|
2069 for (octave_idx_type i = 0; i < nel; i++) |
4634
|
2070 { |
|
2071 double val = elem (i); |
|
2072 if (xisnan (val) || D_NINT (val) == val) |
|
2073 continue; |
|
2074 else |
|
2075 return false; |
|
2076 } |
2385
|
2077 |
|
2078 return true; |
|
2079 } |
|
2080 |
1968
|
2081 // Return nonzero if any element of M is not an integer. Also extract |
|
2082 // the largest and smallest values and return them in MAX_VAL and MIN_VAL. |
|
2083 |
2385
|
2084 bool |
1968
|
2085 Matrix::all_integers (double& max_val, double& min_val) const |
|
2086 { |
5275
|
2087 octave_idx_type nel = nelem (); |
4634
|
2088 |
|
2089 if (nel > 0) |
1968
|
2090 { |
4634
|
2091 max_val = elem (0); |
|
2092 min_val = elem (0); |
1968
|
2093 } |
|
2094 else |
2385
|
2095 return false; |
1968
|
2096 |
5275
|
2097 for (octave_idx_type i = 0; i < nel; i++) |
4634
|
2098 { |
|
2099 double val = elem (i); |
|
2100 |
|
2101 if (val > max_val) |
|
2102 max_val = val; |
|
2103 |
|
2104 if (val < min_val) |
|
2105 min_val = val; |
|
2106 |
|
2107 if (D_NINT (val) != val) |
|
2108 return false; |
|
2109 } |
2385
|
2110 |
|
2111 return true; |
1968
|
2112 } |
|
2113 |
2385
|
2114 bool |
1968
|
2115 Matrix::too_large_for_float (void) const |
|
2116 { |
5275
|
2117 octave_idx_type nel = nelem (); |
|
2118 |
|
2119 for (octave_idx_type i = 0; i < nel; i++) |
4634
|
2120 { |
|
2121 double val = elem (i); |
|
2122 |
5389
|
2123 if (! (xisnan (val) || xisinf (val)) |
5387
|
2124 && fabs (val) > FLT_MAX) |
4634
|
2125 return true; |
|
2126 } |
1968
|
2127 |
2385
|
2128 return false; |
1968
|
2129 } |
|
2130 |
4015
|
2131 // XXX FIXME XXX Do these really belong here? Maybe they should be |
|
2132 // in a base class? |
458
|
2133 |
2832
|
2134 boolMatrix |
4015
|
2135 Matrix::all (int dim) const |
458
|
2136 { |
4015
|
2137 MX_ALL_OP (dim); |
458
|
2138 } |
|
2139 |
2832
|
2140 boolMatrix |
4015
|
2141 Matrix::any (int dim) const |
458
|
2142 { |
4015
|
2143 MX_ANY_OP (dim); |
458
|
2144 } |
|
2145 |
|
2146 Matrix |
3723
|
2147 Matrix::cumprod (int dim) const |
458
|
2148 { |
4015
|
2149 MX_CUMULATIVE_OP (Matrix, double, *=); |
458
|
2150 } |
|
2151 |
|
2152 Matrix |
3723
|
2153 Matrix::cumsum (int dim) const |
458
|
2154 { |
4015
|
2155 MX_CUMULATIVE_OP (Matrix, double, +=); |
458
|
2156 } |
|
2157 |
|
2158 Matrix |
3723
|
2159 Matrix::prod (int dim) const |
458
|
2160 { |
3864
|
2161 MX_REDUCTION_OP (Matrix, *=, 1.0, 1.0); |
458
|
2162 } |
|
2163 |
|
2164 Matrix |
3723
|
2165 Matrix::sum (int dim) const |
458
|
2166 { |
3864
|
2167 MX_REDUCTION_OP (Matrix, +=, 0.0, 0.0); |
458
|
2168 } |
|
2169 |
|
2170 Matrix |
3723
|
2171 Matrix::sumsq (int dim) const |
458
|
2172 { |
3864
|
2173 #define ROW_EXPR \ |
|
2174 double d = elem (i, j); \ |
|
2175 retval.elem (i, 0) += d * d |
|
2176 |
|
2177 #define COL_EXPR \ |
|
2178 double d = elem (i, j); \ |
|
2179 retval.elem (0, j) += d * d |
|
2180 |
|
2181 MX_BASE_REDUCTION_OP (Matrix, ROW_EXPR, COL_EXPR, 0.0, 0.0); |
|
2182 |
|
2183 #undef ROW_EXPR |
|
2184 #undef COL_EXPR |
458
|
2185 } |
|
2186 |
2385
|
2187 Matrix |
|
2188 Matrix::abs (void) const |
|
2189 { |
5275
|
2190 octave_idx_type nr = rows (); |
|
2191 octave_idx_type nc = cols (); |
2385
|
2192 |
|
2193 Matrix retval (nr, nc); |
|
2194 |
5275
|
2195 for (octave_idx_type j = 0; j < nc; j++) |
|
2196 for (octave_idx_type i = 0; i < nr; i++) |
2385
|
2197 retval (i, j) = fabs (elem (i, j)); |
|
2198 |
|
2199 return retval; |
|
2200 } |
|
2201 |
458
|
2202 ColumnVector |
|
2203 Matrix::diag (void) const |
|
2204 { |
|
2205 return diag (0); |
|
2206 } |
|
2207 |
|
2208 ColumnVector |
5275
|
2209 Matrix::diag (octave_idx_type k) const |
458
|
2210 { |
5275
|
2211 octave_idx_type nnr = rows (); |
|
2212 octave_idx_type nnc = cols (); |
458
|
2213 if (k > 0) |
|
2214 nnc -= k; |
|
2215 else if (k < 0) |
|
2216 nnr += k; |
|
2217 |
|
2218 ColumnVector d; |
|
2219 |
|
2220 if (nnr > 0 && nnc > 0) |
|
2221 { |
5275
|
2222 octave_idx_type ndiag = (nnr < nnc) ? nnr : nnc; |
458
|
2223 |
|
2224 d.resize (ndiag); |
|
2225 |
|
2226 if (k > 0) |
|
2227 { |
5275
|
2228 for (octave_idx_type i = 0; i < ndiag; i++) |
458
|
2229 d.elem (i) = elem (i, i+k); |
|
2230 } |
4509
|
2231 else if (k < 0) |
458
|
2232 { |
5275
|
2233 for (octave_idx_type i = 0; i < ndiag; i++) |
458
|
2234 d.elem (i) = elem (i-k, i); |
|
2235 } |
|
2236 else |
|
2237 { |
5275
|
2238 for (octave_idx_type i = 0; i < ndiag; i++) |
458
|
2239 d.elem (i) = elem (i, i); |
|
2240 } |
|
2241 } |
|
2242 else |
4513
|
2243 (*current_liboctave_error_handler) |
|
2244 ("diag: requested diagonal out of range"); |
458
|
2245 |
|
2246 return d; |
|
2247 } |
|
2248 |
|
2249 ColumnVector |
|
2250 Matrix::row_min (void) const |
|
2251 { |
5275
|
2252 Array<octave_idx_type> dummy_idx; |
4587
|
2253 return row_min (dummy_idx); |
458
|
2254 } |
|
2255 |
|
2256 ColumnVector |
5275
|
2257 Matrix::row_min (Array<octave_idx_type>& idx_arg) const |
458
|
2258 { |
|
2259 ColumnVector result; |
|
2260 |
5275
|
2261 octave_idx_type nr = rows (); |
|
2262 octave_idx_type nc = cols (); |
458
|
2263 |
|
2264 if (nr > 0 && nc > 0) |
|
2265 { |
|
2266 result.resize (nr); |
4587
|
2267 idx_arg.resize (nr); |
458
|
2268 |
5275
|
2269 for (octave_idx_type i = 0; i < nr; i++) |
458
|
2270 { |
5275
|
2271 octave_idx_type idx_j; |
4469
|
2272 |
|
2273 double tmp_min = octave_NaN; |
|
2274 |
|
2275 for (idx_j = 0; idx_j < nc; idx_j++) |
2354
|
2276 { |
4469
|
2277 tmp_min = elem (i, idx_j); |
|
2278 |
5389
|
2279 if (! xisnan (tmp_min)) |
4469
|
2280 break; |
|
2281 } |
|
2282 |
5275
|
2283 for (octave_idx_type j = idx_j+1; j < nc; j++) |
4469
|
2284 { |
|
2285 double tmp = elem (i, j); |
|
2286 |
5389
|
2287 if (xisnan (tmp)) |
4469
|
2288 continue; |
|
2289 else if (tmp < tmp_min) |
2354
|
2290 { |
4469
|
2291 idx_j = j; |
|
2292 tmp_min = tmp; |
2354
|
2293 } |
|
2294 } |
|
2295 |
4469
|
2296 result.elem (i) = tmp_min; |
5389
|
2297 idx_arg.elem (i) = xisnan (tmp_min) ? 0 : idx_j; |
458
|
2298 } |
|
2299 } |
|
2300 |
|
2301 return result; |
|
2302 } |
|
2303 |
|
2304 ColumnVector |
|
2305 Matrix::row_max (void) const |
|
2306 { |
5275
|
2307 Array<octave_idx_type> dummy_idx; |
4587
|
2308 return row_max (dummy_idx); |
458
|
2309 } |
|
2310 |
|
2311 ColumnVector |
5275
|
2312 Matrix::row_max (Array<octave_idx_type>& idx_arg) const |
458
|
2313 { |
|
2314 ColumnVector result; |
|
2315 |
5275
|
2316 octave_idx_type nr = rows (); |
|
2317 octave_idx_type nc = cols (); |
458
|
2318 |
|
2319 if (nr > 0 && nc > 0) |
|
2320 { |
|
2321 result.resize (nr); |
4587
|
2322 idx_arg.resize (nr); |
458
|
2323 |
5275
|
2324 for (octave_idx_type i = 0; i < nr; i++) |
458
|
2325 { |
5275
|
2326 octave_idx_type idx_j; |
4469
|
2327 |
|
2328 double tmp_max = octave_NaN; |
|
2329 |
|
2330 for (idx_j = 0; idx_j < nc; idx_j++) |
2354
|
2331 { |
4469
|
2332 tmp_max = elem (i, idx_j); |
|
2333 |
5389
|
2334 if (! xisnan (tmp_max)) |
4469
|
2335 break; |
|
2336 } |
|
2337 |
5275
|
2338 for (octave_idx_type j = idx_j+1; j < nc; j++) |
4469
|
2339 { |
|
2340 double tmp = elem (i, j); |
|
2341 |
5389
|
2342 if (xisnan (tmp)) |
4469
|
2343 continue; |
|
2344 else if (tmp > tmp_max) |
2354
|
2345 { |
4469
|
2346 idx_j = j; |
|
2347 tmp_max = tmp; |
2354
|
2348 } |
|
2349 } |
|
2350 |
4469
|
2351 result.elem (i) = tmp_max; |
5389
|
2352 idx_arg.elem (i) = xisnan (tmp_max) ? 0 : idx_j; |
458
|
2353 } |
|
2354 } |
|
2355 |
|
2356 return result; |
|
2357 } |
|
2358 |
|
2359 RowVector |
|
2360 Matrix::column_min (void) const |
|
2361 { |
5275
|
2362 Array<octave_idx_type> dummy_idx; |
4587
|
2363 return column_min (dummy_idx); |
458
|
2364 } |
2354
|
2365 |
458
|
2366 RowVector |
5275
|
2367 Matrix::column_min (Array<octave_idx_type>& idx_arg) const |
458
|
2368 { |
|
2369 RowVector result; |
|
2370 |
5275
|
2371 octave_idx_type nr = rows (); |
|
2372 octave_idx_type nc = cols (); |
458
|
2373 |
|
2374 if (nr > 0 && nc > 0) |
|
2375 { |
|
2376 result.resize (nc); |
4587
|
2377 idx_arg.resize (nc); |
458
|
2378 |
5275
|
2379 for (octave_idx_type j = 0; j < nc; j++) |
458
|
2380 { |
5275
|
2381 octave_idx_type idx_i; |
4469
|
2382 |
|
2383 double tmp_min = octave_NaN; |
|
2384 |
|
2385 for (idx_i = 0; idx_i < nr; idx_i++) |
2354
|
2386 { |
4469
|
2387 tmp_min = elem (idx_i, j); |
|
2388 |
5389
|
2389 if (! xisnan (tmp_min)) |
4469
|
2390 break; |
|
2391 } |
|
2392 |
5275
|
2393 for (octave_idx_type i = idx_i+1; i < nr; i++) |
4469
|
2394 { |
|
2395 double tmp = elem (i, j); |
|
2396 |
5389
|
2397 if (xisnan (tmp)) |
4469
|
2398 continue; |
|
2399 else if (tmp < tmp_min) |
2354
|
2400 { |
4469
|
2401 idx_i = i; |
|
2402 tmp_min = tmp; |
2354
|
2403 } |
|
2404 } |
|
2405 |
4469
|
2406 result.elem (j) = tmp_min; |
5389
|
2407 idx_arg.elem (j) = xisnan (tmp_min) ? 0 : idx_i; |
458
|
2408 } |
|
2409 } |
|
2410 |
|
2411 return result; |
|
2412 } |
|
2413 |
2354
|
2414 RowVector |
|
2415 Matrix::column_max (void) const |
|
2416 { |
5275
|
2417 Array<octave_idx_type> dummy_idx; |
4587
|
2418 return column_max (dummy_idx); |
2354
|
2419 } |
458
|
2420 |
|
2421 RowVector |
5275
|
2422 Matrix::column_max (Array<octave_idx_type>& idx_arg) const |
458
|
2423 { |
|
2424 RowVector result; |
|
2425 |
5275
|
2426 octave_idx_type nr = rows (); |
|
2427 octave_idx_type nc = cols (); |
458
|
2428 |
|
2429 if (nr > 0 && nc > 0) |
|
2430 { |
|
2431 result.resize (nc); |
4587
|
2432 idx_arg.resize (nc); |
458
|
2433 |
5275
|
2434 for (octave_idx_type j = 0; j < nc; j++) |
458
|
2435 { |
5275
|
2436 octave_idx_type idx_i; |
4469
|
2437 |
|
2438 double tmp_max = octave_NaN; |
|
2439 |
|
2440 for (idx_i = 0; idx_i < nr; idx_i++) |
2354
|
2441 { |
4469
|
2442 tmp_max = elem (idx_i, j); |
|
2443 |
5389
|
2444 if (! xisnan (tmp_max)) |
4469
|
2445 break; |
|
2446 } |
|
2447 |
5275
|
2448 for (octave_idx_type i = idx_i+1; i < nr; i++) |
4469
|
2449 { |
|
2450 double tmp = elem (i, j); |
|
2451 |
5389
|
2452 if (xisnan (tmp)) |
4469
|
2453 continue; |
|
2454 else if (tmp > tmp_max) |
2354
|
2455 { |
4469
|
2456 idx_i = i; |
|
2457 tmp_max = tmp; |
2354
|
2458 } |
|
2459 } |
|
2460 |
4469
|
2461 result.elem (j) = tmp_max; |
5389
|
2462 idx_arg.elem (j) = xisnan (tmp_max) ? 0 : idx_i; |
458
|
2463 } |
|
2464 } |
|
2465 |
|
2466 return result; |
|
2467 } |
|
2468 |
3504
|
2469 std::ostream& |
|
2470 operator << (std::ostream& os, const Matrix& a) |
458
|
2471 { |
5275
|
2472 for (octave_idx_type i = 0; i < a.rows (); i++) |
458
|
2473 { |
5275
|
2474 for (octave_idx_type j = 0; j < a.cols (); j++) |
4130
|
2475 { |
|
2476 os << " "; |
|
2477 octave_write_double (os, a.elem (i, j)); |
|
2478 } |
458
|
2479 os << "\n"; |
|
2480 } |
|
2481 return os; |
|
2482 } |
|
2483 |
3504
|
2484 std::istream& |
|
2485 operator >> (std::istream& is, Matrix& a) |
458
|
2486 { |
5275
|
2487 octave_idx_type nr = a.rows (); |
|
2488 octave_idx_type nc = a.cols (); |
458
|
2489 |
|
2490 if (nr < 1 || nc < 1) |
3504
|
2491 is.clear (std::ios::badbit); |
458
|
2492 else |
|
2493 { |
|
2494 double tmp; |
5275
|
2495 for (octave_idx_type i = 0; i < nr; i++) |
|
2496 for (octave_idx_type j = 0; j < nc; j++) |
458
|
2497 { |
4130
|
2498 tmp = octave_read_double (is); |
458
|
2499 if (is) |
|
2500 a.elem (i, j) = tmp; |
|
2501 else |
2795
|
2502 goto done; |
458
|
2503 } |
|
2504 } |
|
2505 |
2795
|
2506 done: |
|
2507 |
458
|
2508 return is; |
|
2509 } |
|
2510 |
1819
|
2511 Matrix |
|
2512 Givens (double x, double y) |
|
2513 { |
|
2514 double cc, s, temp_r; |
|
2515 |
3887
|
2516 F77_FUNC (dlartg, DLARTG) (x, y, cc, s, temp_r); |
1819
|
2517 |
|
2518 Matrix g (2, 2); |
|
2519 |
|
2520 g.elem (0, 0) = cc; |
|
2521 g.elem (1, 1) = cc; |
|
2522 g.elem (0, 1) = s; |
|
2523 g.elem (1, 0) = -s; |
|
2524 |
|
2525 return g; |
|
2526 } |
|
2527 |
|
2528 Matrix |
|
2529 Sylvester (const Matrix& a, const Matrix& b, const Matrix& c) |
|
2530 { |
|
2531 Matrix retval; |
|
2532 |
|
2533 // XXX FIXME XXX -- need to check that a, b, and c are all the same |
|
2534 // size. |
|
2535 |
|
2536 // Compute Schur decompositions. |
|
2537 |
|
2538 SCHUR as (a, "U"); |
|
2539 SCHUR bs (b, "U"); |
|
2540 |
|
2541 // Transform c to new coordinates. |
|
2542 |
|
2543 Matrix ua = as.unitary_matrix (); |
|
2544 Matrix sch_a = as.schur_matrix (); |
|
2545 |
|
2546 Matrix ub = bs.unitary_matrix (); |
|
2547 Matrix sch_b = bs.schur_matrix (); |
|
2548 |
|
2549 Matrix cx = ua.transpose () * c * ub; |
|
2550 |
|
2551 // Solve the sylvester equation, back-transform, and return the |
|
2552 // solution. |
|
2553 |
5275
|
2554 octave_idx_type a_nr = a.rows (); |
|
2555 octave_idx_type b_nr = b.rows (); |
1819
|
2556 |
|
2557 double scale; |
5275
|
2558 octave_idx_type info; |
1819
|
2559 |
1950
|
2560 double *pa = sch_a.fortran_vec (); |
|
2561 double *pb = sch_b.fortran_vec (); |
|
2562 double *px = cx.fortran_vec (); |
|
2563 |
4552
|
2564 F77_XFCN (dtrsyl, DTRSYL, (F77_CONST_CHAR_ARG2 ("N", 1), |
|
2565 F77_CONST_CHAR_ARG2 ("N", 1), |
|
2566 1, a_nr, b_nr, pa, a_nr, pb, |
|
2567 b_nr, px, a_nr, scale, info |
|
2568 F77_CHAR_ARG_LEN (1) |
|
2569 F77_CHAR_ARG_LEN (1))); |
1950
|
2570 |
|
2571 |
|
2572 if (f77_exception_encountered) |
|
2573 (*current_liboctave_error_handler) ("unrecoverable error in dtrsyl"); |
|
2574 else |
|
2575 { |
|
2576 // XXX FIXME XXX -- check info? |
1819
|
2577 |
1950
|
2578 retval = -ua*cx*ub.transpose (); |
|
2579 } |
1819
|
2580 |
|
2581 return retval; |
|
2582 } |
|
2583 |
2828
|
2584 // matrix by matrix -> matrix operations |
|
2585 |
|
2586 Matrix |
|
2587 operator * (const Matrix& m, const Matrix& a) |
|
2588 { |
|
2589 Matrix retval; |
|
2590 |
5275
|
2591 octave_idx_type nr = m.rows (); |
|
2592 octave_idx_type nc = m.cols (); |
|
2593 |
|
2594 octave_idx_type a_nr = a.rows (); |
|
2595 octave_idx_type a_nc = a.cols (); |
2828
|
2596 |
|
2597 if (nc != a_nr) |
|
2598 gripe_nonconformant ("operator *", nr, nc, a_nr, a_nc); |
|
2599 else |
|
2600 { |
|
2601 if (nr == 0 || nc == 0 || a_nc == 0) |
|
2602 retval.resize (nr, a_nc, 0.0); |
|
2603 else |
|
2604 { |
5275
|
2605 octave_idx_type ld = nr; |
|
2606 octave_idx_type lda = a_nr; |
2828
|
2607 |
|
2608 retval.resize (nr, a_nc); |
|
2609 double *c = retval.fortran_vec (); |
|
2610 |
4552
|
2611 F77_XFCN (dgemm, DGEMM, (F77_CONST_CHAR_ARG2 ("N", 1), |
|
2612 F77_CONST_CHAR_ARG2 ("N", 1), |
|
2613 nr, a_nc, nc, 1.0, m.data (), |
|
2614 ld, a.data (), lda, 0.0, c, nr |
|
2615 F77_CHAR_ARG_LEN (1) |
|
2616 F77_CHAR_ARG_LEN (1))); |
2828
|
2617 |
|
2618 if (f77_exception_encountered) |
|
2619 (*current_liboctave_error_handler) |
|
2620 ("unrecoverable error in dgemm"); |
|
2621 } |
|
2622 } |
|
2623 |
|
2624 return retval; |
|
2625 } |
|
2626 |
4309
|
2627 // XXX FIXME XXX -- it would be nice to share code among the min/max |
|
2628 // functions below. |
|
2629 |
|
2630 #define EMPTY_RETURN_CHECK(T) \ |
|
2631 if (nr == 0 || nc == 0) \ |
|
2632 return T (nr, nc); |
|
2633 |
|
2634 Matrix |
|
2635 min (double d, const Matrix& m) |
|
2636 { |
5275
|
2637 octave_idx_type nr = m.rows (); |
|
2638 octave_idx_type nc = m.columns (); |
4309
|
2639 |
|
2640 EMPTY_RETURN_CHECK (Matrix); |
|
2641 |
|
2642 Matrix result (nr, nc); |
|
2643 |
5275
|
2644 for (octave_idx_type j = 0; j < nc; j++) |
|
2645 for (octave_idx_type i = 0; i < nr; i++) |
4309
|
2646 { |
|
2647 OCTAVE_QUIT; |
|
2648 result (i, j) = xmin (d, m (i, j)); |
|
2649 } |
|
2650 |
|
2651 return result; |
|
2652 } |
|
2653 |
|
2654 Matrix |
|
2655 min (const Matrix& m, double d) |
|
2656 { |
5275
|
2657 octave_idx_type nr = m.rows (); |
|
2658 octave_idx_type nc = m.columns (); |
4309
|
2659 |
|
2660 EMPTY_RETURN_CHECK (Matrix); |
|
2661 |
|
2662 Matrix result (nr, nc); |
|
2663 |
5275
|
2664 for (octave_idx_type j = 0; j < nc; j++) |
|
2665 for (octave_idx_type i = 0; i < nr; i++) |
4309
|
2666 { |
|
2667 OCTAVE_QUIT; |
|
2668 result (i, j) = xmin (m (i, j), d); |
|
2669 } |
|
2670 |
|
2671 return result; |
|
2672 } |
|
2673 |
|
2674 Matrix |
|
2675 min (const Matrix& a, const Matrix& b) |
|
2676 { |
5275
|
2677 octave_idx_type nr = a.rows (); |
|
2678 octave_idx_type nc = a.columns (); |
4309
|
2679 |
|
2680 if (nr != b.rows () || nc != b.columns ()) |
|
2681 { |
|
2682 (*current_liboctave_error_handler) |
|
2683 ("two-arg min expecting args of same size"); |
|
2684 return Matrix (); |
|
2685 } |
|
2686 |
|
2687 EMPTY_RETURN_CHECK (Matrix); |
|
2688 |
|
2689 Matrix result (nr, nc); |
|
2690 |
5275
|
2691 for (octave_idx_type j = 0; j < nc; j++) |
|
2692 for (octave_idx_type i = 0; i < nr; i++) |
4309
|
2693 { |
|
2694 OCTAVE_QUIT; |
|
2695 result (i, j) = xmin (a (i, j), b (i, j)); |
|
2696 } |
|
2697 |
|
2698 return result; |
|
2699 } |
|
2700 |
|
2701 Matrix |
|
2702 max (double d, const Matrix& m) |
|
2703 { |
5275
|
2704 octave_idx_type nr = m.rows (); |
|
2705 octave_idx_type nc = m.columns (); |
4309
|
2706 |
|
2707 EMPTY_RETURN_CHECK (Matrix); |
|
2708 |
|
2709 Matrix result (nr, nc); |
|
2710 |
5275
|
2711 for (octave_idx_type j = 0; j < nc; j++) |
|
2712 for (octave_idx_type i = 0; i < nr; i++) |
4309
|
2713 { |
|
2714 OCTAVE_QUIT; |
|
2715 result (i, j) = xmax (d, m (i, j)); |
|
2716 } |
|
2717 |
|
2718 return result; |
|
2719 } |
|
2720 |
|
2721 Matrix |
|
2722 max (const Matrix& m, double d) |
|
2723 { |
5275
|
2724 octave_idx_type nr = m.rows (); |
|
2725 octave_idx_type nc = m.columns (); |
4309
|
2726 |
|
2727 EMPTY_RETURN_CHECK (Matrix); |
|
2728 |
|
2729 Matrix result (nr, nc); |
|
2730 |
5275
|
2731 for (octave_idx_type j = 0; j < nc; j++) |
|
2732 for (octave_idx_type i = 0; i < nr; i++) |
4309
|
2733 { |
|
2734 OCTAVE_QUIT; |
|
2735 result (i, j) = xmax (m (i, j), d); |
|
2736 } |
|
2737 |
|
2738 return result; |
|
2739 } |
|
2740 |
|
2741 Matrix |
|
2742 max (const Matrix& a, const Matrix& b) |
|
2743 { |
5275
|
2744 octave_idx_type nr = a.rows (); |
|
2745 octave_idx_type nc = a.columns (); |
4309
|
2746 |
|
2747 if (nr != b.rows () || nc != b.columns ()) |
|
2748 { |
|
2749 (*current_liboctave_error_handler) |
|
2750 ("two-arg max expecting args of same size"); |
|
2751 return Matrix (); |
|
2752 } |
|
2753 |
|
2754 EMPTY_RETURN_CHECK (Matrix); |
|
2755 |
|
2756 Matrix result (nr, nc); |
|
2757 |
5275
|
2758 for (octave_idx_type j = 0; j < nc; j++) |
|
2759 for (octave_idx_type i = 0; i < nr; i++) |
4309
|
2760 { |
|
2761 OCTAVE_QUIT; |
|
2762 result (i, j) = xmax (a (i, j), b (i, j)); |
|
2763 } |
|
2764 |
|
2765 return result; |
|
2766 } |
|
2767 |
2870
|
2768 MS_CMP_OPS(Matrix, , double, ) |
3504
|
2769 MS_BOOL_OPS(Matrix, double, 0.0) |
2870
|
2770 |
|
2771 SM_CMP_OPS(double, , Matrix, ) |
3504
|
2772 SM_BOOL_OPS(double, Matrix, 0.0) |
2870
|
2773 |
|
2774 MM_CMP_OPS(Matrix, , Matrix, ) |
3504
|
2775 MM_BOOL_OPS(Matrix, Matrix, 0.0) |
2870
|
2776 |
458
|
2777 /* |
|
2778 ;;; Local Variables: *** |
|
2779 ;;; mode: C++ *** |
|
2780 ;;; End: *** |
|
2781 */ |